ARTICLE
Received 12 May 2014 | Accepted 7 Jul 2014 | Published 6 Aug 2014
Huai-Chia Chuang1, Wayne H.-H. Sheu2,3, Yi-Ting Lin1, Ching-Yi Tsai1, Chia-Yu Yang1, Yu-Jhen Cheng1, Pau-Yi Huang1, Ju-Pi Li1, Li-Li Chiu2, Xiaohong Wang4, Min Xie5, Michael D. Schneider6 & Tse-Hua Tan1,4
Proinammatory cytokines play important roles in insulin resistance. Here we report that mice with a T-cell-specic conditional knockout of HGK (T-HGK cKO) develop systemic inammation and insulin resistance. This condition is ameliorated by either IL-6 or IL-17 neutralization. HGK directly phosphorylates TRAF2, leading to its lysosomal degradation and subsequent inhibition of IL-6 production. IL-6-overproducing HGK-decient T cells accumulate in adipose tissue and further differentiate into IL-6/IL-17 double-positive cells. Moreover, CCL20 neutralization or CCR6 deciency reduces the Th17 population or insulin resistance in T-HGK cKO mice. In addition, leptin receptor deciency in T cells inhibits Th17 differentiation and improves the insulin sensitivity in T-HGK cKO mice, which suggests that leptin cooperates with IL-6 to promote Th17 differentiation. Thus, HGK deciency induces TRAF2/IL-6 upregulation, leading to IL-6/leptin-induced Th17 differentiation in adipose tissue and subsequent insulin resistance. These ndings provide insight into the reciprocal regulation between the immune system and the metabolism.
1 Immunology Research Center, National Health Research Institutes, 35 Keyan Road, Zhunan 35053, Taiwan. 2 Division of Endocrinology and Metabolism, Taichung Veterans General Hospital, 160, Sec. 3, Chung-Kang Road, Taichung 40705, Taiwan. 3 Faculty of Medicine, National Yang-Ming University, Taipei 11221, Taiwan. 4 Department of Pathology and Immunology, Baylor College of Medicine, Houston, Texas 77030, USA. 5 UT Southwestern Medical Center at Dallas, 5323 Harry Hines Boulevard, Dallas, Texas 75390, USA. 6 Faculty of Medicine, British Heart Foundation Centre of Research Excellence, National Heart and Lung Institute, Imperial College London, South Kensington Campus, London SW7 2AZ, UK. Correspondence and requests for materials should be addressed to M.D.S. (email: mailto:[email protected]
Web End [email protected] ) or to T.-H.T. (email: mailto:[email protected]
Web End [email protected] ).
NATURE COMMUNICATIONS | 5:4602 | DOI: 10.1038/ncomms5602 | http://www.nature.com/naturecommunications
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DOI: 10.1038/ncomms5602 OPEN
HGK/MAP4K4 deciency induces TRAF2 stabilization and Th17 differentiation leading to insulin resistance
ARTICLE NATURE COMMUNICATIONS | DOI: 10.1038/ncomms5602
T-helper 17 (Th17) cells, a subset of T-helper (CD4 ) cells, mainly produce interleukin (IL)-17, IL-17F, IL-21 and IL-22. IL-6-, IL-21- or IL-23-induced STAT3 (signal
transducer and activator of transcription 3) activation facilitates Th17 differentiation1,2. IL-6 stimulation induces IL-21 production and an IL-21 self-amplifying loop; IL-23 further helps expansion and stabilization of Th17 population1,2. Conversely, the transforming growth factor-b (TGF-b)-Smad pathway limits Th1 and Th2 differentiation through downregulation of T-bet/GATA-3 expression, leading to increased Th17 differentiation. The recruitment of Th17 cells to different tissues is mediated by CCL20 and CCL22, along with their respective cognate chemokine receptors CCR6 and CCR4 (refs 3,4). The proinammatory cytokines IL-17 and IL-22 secreted by inltrating Th17 cells can cause tissue damages2. Th17 cells are involved in many autoimmune diseases or inammatory diseases, such as systemic lupus erythematosus, rheumatoid arthritis, multiple sclerosis, asthma, inammatory bowel disease and type 2 diabetes (T2D)57.
HPK1/GCK-like kinase (HGK), also named MAP4K4 (mitogen-actiavted protein kinase kinase kinase kinase 4), is a kinase that belongs to the mammalian Ste20-like family of serine/ threonine kinases8. Whole-body HGK-decient mice show early embryonic lethality9, implicating that HGK has an important function in embryonic development. Earlier studies using cultured cells show that HGK has various cellular functions. Tumour necrosis factor-a (TNF-a)-stimulated HGK induces JNK (c-Jun N-terminal kinase) activation through MKK4 and MKK7 in 293T cells8, while HGK inhibits adipose lipogenesis in an AMPK- and mammalian target of rapamycin-dependent but JNK-independent pathway10. HGK also impairs insulin signalling/glucose uptake in adipocytes and skeletal muscle cells, leading to insulin resistance11,12. Moreover, HGK protects pancreatic b-cells from the reduction of insulin secretion by
TNF-a13. HGK small interfering RNA knockdown in murine macrophages inhibits lipopolysaccharide-induced septic shock by downregulating IL-1b and TNF-a production14. In addition,
HGK has been identied as a promigratory kinase by a small interfering RNA screening15. Consistently, HGK expression is also associated with worse prognosis of pancreatic ductal adenocarcinoma, colorectal cancer and lung adenocarcinoma1618. Recent report also shows that the interaction of HGK with Pyk2 contributes to glioma cell migration19. Taken together, HGK is involved in multiple physiological functions in different cell types.
Our previous studies indicate that two other MAP4K family kinases, HPK1 (MAP4K1)20 and GLK (MAP4K3)21, play important roles in T-cell receptor signalling and T-cell-mediated immune responses22,23. To date, the roles of HGK in lymphocyte signalling have not been investigated. In this report, we studied the in vivo roles of HGK in T-cell signalling and immune regulation by generating T-cell-specic HGK conditional knockout (T-HGK cKO) mice. We found that HGK downregulates IL-6 production in T cells through direct phosphorylation and degradation of TNF receptor-associated factor 2 (TRAF2), leading to the suppression of Th17 cell-mediated insulin resistance.
ResultsT-HGK cKO mice show inammation-associated disorders. The specic deletion of HGK in T cells from T-HGK cKO mice (Fig. 1a) was conrmed by immunoblotting analyses (Fig. 1b). T-HGK cKO mice displayed normal development of T cells, B cells, neutrophils and macrophages (Fig. 1c and Supplementary Fig. 1a,b), as well as normal development and function of Treg
cells (Fig. 1d and Supplementary Fig. 1c,d). T-HGK cKO mice showed severe dermatitis and cataracts starting between 12 and 23 weeks of age. These mice also showed hepatosplenomegaly, along with enlargements of lymph nodes and kidneys. Histology staining indicated that T-HGK cKO mice developed hepatic steatosis (fatty liver) and pneumonia starting from 16 weeks of age (Fig. 2a). Histology data also showed inltration of immune cells in the skin, eyes, liver and lung (Fig. 2a). These data suggest that T-HGK cKO mice may develop systemic inammation. The proinammatory cytokines IL-6 and IL-17, but not interferon-g (IFN-g) or TNF-a, were signicantly increased in the sera from T-HGK cKO mice (Fig. 2b). Intra-cellular staining of IL-6-producing cells in the peripheral blood showed that T cells (mostly CD4 T cells) were the major source of serum IL-6 in T-HGK cKO mice (Fig. 2c,d). In addition, IL-17-producing CD4 T (Th17) cells but not CD8 T cells were also signicantly increased in the blood of T-HGK cKO mice (Fig. 1e,f).
IL-6 reduction by HGK through TRAF2 phosphorylation and degradation. HGK interacts with TRAFs24; and overexpression of TRAFs enhances IKK/nuclear factor-kB activation and IL-6 production25,26. Thus, we examined whether HGK negatively regulates IL-6 production through targeting TRAFs. The basal levels of TRAF2 were drastically enhanced in HGK cKO T cells (Fig. 3a), as well as in CD4 and CD8 T cells (Supplementary
Fig. 2a). The protein levels of TRAF2 in T-HGK cKO T cells were abolished after HGK restoration (Fig. 3b). In addition, HGK was constitutively activated in T cells (Fig. 3c). During T-cell receptor signalling, HGK kinase activity was decreased with a concomitant induction of TRAF2 protein levels (Fig. 3c). Conversely, TRAF2 levels were decreased by ectopically expressed HGK in an overexpression system (Fig. 3d). This HGK-mediated TRAF2 degradation was abolished by the lysosome inhibitor chloroquine but not by the proteasome inhibitor MG132 (Fig. 3e and Supplementary Fig. 2b). The colocalization between HGK and TRAF2 in lysosome was highly visible (Fig. 3f).
To determine whether HGK directly phosphorylates TRAF2, we rst examined the interaction between these two molecules. HGK constitutively interacted with endogenous TRAF2 in primary T cells (Fig. 4a). In vitro binding assays with puried HGK and TRAF2 proteins and proteinprotein interaction/a-technology assays with specic donor/acceptor beads further showed a direct interaction between these two proteins (Fig. 4b,c). In vitro kinase assays with puried proteins showed that serine phosphorylation of TRAF2 was increased by HGK, but not by HGK kinase-dead mutant (Fig. 4d). To identify TRAF2 phosphorylation site(s), we isolated in vitro phosphorylated Flag-tagged TRAF2, followed by mass spectrometry analyses. Ser35 was identied as the HGK-targeted TRAF2 phosphorylation site (Fig. 4e). Unlike eight other serine/threonine mutants, TRAF2 S35A mutant was resistant to degradation induced by HGK (Fig. 4f). Moreover, IL-6 overproduction of HGK cKO T cells was signicantly reduced by TRAF2 short hairpin RNA (Fig. 4g), suggesting that HGK downregulation induces IL-6 overproduction through TRAF2. These results indicate that loss of HGK prevents TRAF2 from its lysosomal degradation, resulting in subsequent IL-6 overproduction.
T-HGK cKO mice spontaneously develop insulin resistance. IL-6 is involved in T2D in human patients27. To study whether T-HGK cKO mice develop T2D, we monitored serum levels of fasting insulin, glucose and triglyceride in T-HGK cKO and control mice. There were signicantly increased levels of insulin (starting from 5 weeks), triglyceride (starting from 6 weeks) and
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NATURE COMMUNICATIONS | DOI: 10.1038/ncomms5602 ARTICLE
a
Srfl
EcoRI Targeting vector
Nhel
EcoRI
b
1
2
loxp
T cells
HGK
Tubulin
HGK
Tubulin 55
130
Neo
WT
cKO
KDa
loxp
FRT
FRT
3probe
3probe
Non T cells
130
HGK WT allele
HGK floxed
allele
Nhel Nhel
Nhel Nhel
Neo
1 2
55
EcoRI EcoRI
EcoRI EcoRI
Srfl Smal Smal
Smal Smal
WT
cKO
WT (Smal-Smal) = 4.2 kb
Mutant (Smal-Smal) = 6.2 kb
Thymus Thymus-derived Treg WT HGK cKO
Spleen Peripherally derived Treg WT HGK cKO
KDa
1
2
c d
88.4
WT HGK cKO3.93
3.7
WT HGK cKO 16
15.2
105
7.43
105
7.79
86.7
105
105
104
104
104
104
103
103
103
103
CD4
102
102
102
102
0 1.99 2.19 2.71 2.77
0
Foxp3
0
0
0
102
103
104
105
0
102
103
104
105
0
102
103
104
105
0
102
103
104
105
CD8
CD4
105
13.2
105
14.5
105
105
104
104
104
104
103
7.85
103
9.54
103
103
CD4
102
102
102
102
0
0
Foxp3
0
0
0
102
103
104
105
0
102
103
104
105
0
102
103
104
105
0
102
103
104
105
CD8
CD4
Figure 1 | Normal T-cell development in T-HGK cKO mice. (a) Schematic diagram of the mouse HGK WT allele, the gene targeting vector and the targeted HGK oxed allele. (b) T-cell-specic deletion of HGK in T-HGK cKO mice. T cells were puried from the spleen of mice. The remaining cells (non-T cells) were studied as a control. The expression of HGK and tubulin in T cells and non T cells was determined by immunoblotting analyses. (c,d) Flow cytometry analyses of T cells (c) and Treg cells (d) from the thymus and spleen of 5-week-old WT and T-HGK cKO mice. WT, littermate controls (HGKf/f mice or CD4-Cre mice); HGK cKO, T-HGK cKO mice. Data shown are representatives of three independent experiments.
glucose (starting from 8 weeks) (Fig. 5a,b and Supplementary Fig. 3b) in sera of T-HGK cKO mice over time. Starting at 5 weeks of age, T-HGK cKO mice showed an 18% increase in body weight compared with wild-type (WT) control mice (Supplementary Fig. 3a,c); however, the body weights of T-HGK cKO mice decreased after 24 weeks of age. The modest increase of body weight may be a consequence of higher insulin levels28. In addition, food intake levels of T-HGK cKO mice were normal (Supplementary Fig. 3c). The respiratory exchange ratio was signicantly increased in T-HGK cKO mice, indicating that carbohydrates rather than fatty acids were preferentially used (Supplementary Fig. 3d), which in turn may contribute to fat accumulation. Glucose tolerance test (GTT) and insulin tolerance test (ITT) showed that T-HGK cKO mice had signicant decreases in glucose tolerance and insulin sensitivity (Fig. 5c,d). The phenotypes of T-HGK cKO mice were sex independent. The numbers and sizes of pancreatic islets in T-HGK cKO mice were not decreased, and the levels of inammatory cytokines in the pancreas of these mice were not increased (Supplementary Fig. 4ac). Furthermore, insulin signalling29,30 was impaired in three insulin-targeted tissues (adipose tissue, muscles and the liver) of aged T-HGK cKO mice (Fig. 5e), indicating that HGK cKO mice develop insulin resistance. Interestingly, insulin signalling was initially downregulated only in adipose tissue, but not in muscles or the liver of young T-HGK cKO mice (Fig. 5f). The levels of inammatory cytokines were increased in the liver and the muscle of aged T-HGK cKO mice but not young mice (Supplementary Fig. 5), supporting the conclusion that
inammation may cause insulin resistance in the liver and muscle of aged T-HGK cKO mice. These data suggest that adipocytes may be the rst to be regulated in T-HGK cKO mice. Taken together, these results suggest that T-HGK cKO mice develop T2D.
HGK-decient Th17 cells are pathogenic for insulin resistance. To study whether HGK-decient IL-6- or IL-17-producing T cells are responsible for insulin resistance, we rst analysed inltrating T cells from insulin-targeted tissues. IL-6-producing CD4 T cells were increased in adipose tissue of the young T-HGK cKO mice (Fig. 6a). Furthermore, most of the IL-6-producing CD4 T cells in the adipose tissue of T-HGK cKO mice were
IL-17 positive (Fig. 6a). These IL-6 and IL-17 double-positive CD4 T (IL-6 Th17) cells were also present in the peripheral blood of T-HGK cKO mice, and the percentages of Th17 cells in
T-HGK cKO mice increased with age (Fig. 6b). In addition, the percentages of inltrating neutrophils, macrophages and CD8 T cells but not CD4 T cells were increased in the liver of aged T-HGK cKO mice (Supplementary Fig. 6), suggesting that the liver inammation and steatosis in T-HGK cKO mice may be due to the enhancement of circulating cytokines or Th17 cells. As the Th17 chemoattractant CCL20 were the most increased in adipose tissue (Fig. 6c), we studied the effect of CCL20 on the accumulation of Th17 cells in adipose tissue using CCL20 neutralization. After CCL20 neutralization, the Th17 population was decreased in adipose tissue and the glucose intolerance was ameliorated in T-HGK cKO mice (Fig. 6d,e). To further
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ARTICLE NATURE COMMUNICATIONS | DOI: 10.1038/ncomms5602
Skin Eye Liver Lung
WT
HGK
cKO
45 **
WT WT
HGK cKO
WT
40
HGK cKO HGK cKO
600
Cytokines (pg ml1 )
Cytokines (pg ml1 )
200
150
100
50
35
500
30
400
25
20
* *
300
Chemokines (pg ml1 )
15
200
10
5
100
0 IL-6
TNF-
IFN-
IL-17
IL-1
IL-4
IL-5
IL-12
0 TGF-
IL-10 CCL2
0 RANTES
25
IL-6-producing cells (%)
12 *
IL-17-producing cells (%)
WTHGK cKO
CD11b+
Gr-1high
neutrophil
WTHGK cKO
20
***
10
15
*
8
6
10
4
5
2
0 CD4+
T cell
CD8+
T cell
0 CD4+ T CD8+ T
CD19+
B cell
HGK cKO
CD11b+
Gr-1medium
macrophage
WT
CD4 (gated cells)
WT
CD4 (gated cells)
HGK cKO
105
105
104
4.84 14.2
104
3.19 10.6
103
103
102
102
IL-6
0
IL-17
0
0
102
103
104
105 0102 103 104 105
Figure 2 | T-HGK cKO mice show inammation-associated disorders and IL-6/IL-17 induction. (a) Haematoxylin and eosin-stained sections of organs from 16-week-old mice. Arrows, inltrating immune cells. Scale bar, 100 mm. WT, littermate controls (HGKf/f mice or CD4-Cre mice); HGK cKO,
T-HGK cKO mice. (b) The levels of serum cytokines from 8-week-old mice were determined by ELISA assays. n 20. Meanss.e.m. are shown.
(c) Statistical analyses of IL-6-producing cells in the peripheral blood of 8-week-old mice. The frequency of IL-6-producing cells was normalized to the total number of each cell type. n 8. Meanss.e.m. are shown. (d) The representative ow cytometry data of IL-6-producing T cells from peripheral
blood of mice. (e) Statistical analyses of IL-17-producing peripheral blood T cells from 8-week-old mice. The frequency of IL-17-producing T cells was normalized to the total number of T-cell subsets. n 8. Meanss.e.m. are shown. (f) Representative ow cytometry data of IL-17-producing T cells
from peripheral blood of mice. WT, littermate controls (HGKf/f mice or CD4-Cre mice); HGK cKO, T-HGK cKO mice. Data shown (a,b) are representatives of three independent experiments. *P-valueo0.05; **P-valueo0.01; ***P-valueo0.005 (two-tailed MannWhitney U-test).
demonstrate the involvement of CCL20, we bred T-HGK cKO mice with the knockout mice for CCR6, the CCL20 receptor. Consistently, CCR6-decient T-HGK cKO (CD4-Cre;HGKf/f; CCR6 / ) mice displayed the enhancement of glucose tolerance during GTT tests (Fig. 6f). These data suggest that the recruitment of Th17 cells to adipose tissue of T-HGK cKO mice induce insulin resistance.
To verify the role of Th17 cells in the induction of insulin resistance in T-HGK cKO mice, these T cells were isolated from T-HGK cKO mice and then transferred to WT recipients. Two weeks after the adoptive transfer, the cells had populated the fat tissue of recipients. Serum levels of fasting insulin, fasting glucose, IL-6 and IL-17 were signicantly increased after IL-6 IL-17
HGK-decient T-cell transfer but only modestly enhanced by
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NATURE COMMUNICATIONS | DOI: 10.1038/ncomms5602 ARTICLE
cKO KDa Anti-CD3
TRAF2
Actin
HGK kinase activity (103 )
Anti-CD3
IP: HGK
0 15 30 (min)
55 43
43
KDa
HGK
WT WT + Vec WT + HGK
cKO + Vec cKOT + HGK
TRAF1
TRAF2 TRAF3 TRAF4 TRAF5 TRAF6
Actin
130 43
55
55
55
55
72 72
Events (% of max) Events (% of max)
100
80 60 40 20
0 0 102 103 104 105
0 0 102 103 104 105
100
80 60 40 20
12 10
8 6
4 2 0
0 15 30 (min) NS + + +
TRAF2
HGK
TRAF2
Lysotracker
Merge
TRAF2-Flag
+ + + + +
HGK-Myc
+ + + +
0 25
m
TRAF2
+ + + + +0 0.5 1 2 4 (g)
KDa
55
130 43
2 4 6
Chloroquine
Flag
HGK
GFP Actin
TRAF2
HGK
HGK
(h)
KDa
55
130
25
43
Actin
Figure 3 | HGK induces the lysosomal degradation of TRAF2. (a) Immunoblotting analyses of HGK and TRAFs in primary splenic T cells of WT and T-HGK cKO mice. (b) Flow cytometry analyses of TRAF2-positive cells from WTand HGK cKO (cKO) Tcells transfected with empty vector (Vec, encoding CFP alone) or vector encoding HGK tagged with CFP. Meanss.e.m. are shown. (c) Immunoblotting analyses of TRAF2 and actin in Jurkat T cells stimulated with anti-CD3 antibodies (upper panel). In vitro kinase assays of the endogenous HGK proteins immunoprecipitated from lysates of Jurkat Tcells stimulated with anti-CD3 antibodies (lower panel). NS, normal serum. n 3. Meanss.e.m. are shown. (d) Immunoblotting analyses of indicated
molecules in lysates of HEK293T cells transfected with TRAF2 (2 mg) and HGK (various amounts) plasmids. (e) Immunoblotting analyses of indicated molecules in lysates of HEK293T cells transfected with TRAF2 and/or HGK, and treated with the lysosome inhibitor chloroquine. (f) Confocal microscopy analyses of co-localization of HGK-CFP (blue), TRAF2-YFP (green) and lysosome (lysotracker; red) in HEK293T cells treated with chloroquine. Original magnication, 630; scale bar, 10 mm. Data shown are representatives of three independent experiments.
HGK-decient IL-6 IL-17 T-cell transfer (Fig. 7ac). Moreover, IL-6 IL-17 HGK-decient T cell-transferred recipients displayed insulin resistance during GTT tests (Fig. 7d). These results indicate that HGK-decient Th17 cells are pathogenic cells causing diabetes.
As serum IL-6 and IL-17 levels were elevated in T-HGK cKO mice (Fig. 2b) and IL-6 is known to be involved in T2D27, we studied whether Th17-produced IL-6 or IL-17 mediates the induction of insulin resistance in T-HGK cKO mice. The glucose tolerance in T-HGK cKO mice was signicantly restored after IL-6 neutralization (Fig. 7e), indicating that IL-6 contributes to insulin resistance in T-HGK cKO mice. Similar to IL-6 neutralization, IL-17 neutralization also signicantly decreased the glucose levels in T-HGK cKO mice during GTT tests, indicating an improvement of insulin sensitivity (Fig. 7f). Taken together, these data indicate that Th17-produced IL-6 and IL-17 play critical roles in the development of insulin resistance in T-HGK cKO mice.
IL-6 facilitates Th17 differentiation in T-HGK cKO mice. IL-6 is an important stimulator for the differentiation of Th17 (IL-17-producing CD4 T cells)1. Consistently, IL-6 was induced early in T-HGK cKO mice starting at 3 weeks of age, followed by the induction of IL-17 (starting from 8 weeks; Fig. 8a,b). IL-6 production from HGK-decient T cells preceded IL-17 production, suggesting that autocrine/paracrine IL-6 from HGK-decient T cells induces Th17 differentiation in T-HGK cKO mice. Next, we study where Th17 cells were differentiated. Surprisingly, IL-6 IL-17 double-positive T cells were not accumulated in the spleen and lymph nodes, but were gathered in adipose tissue and the peripheral blood of T-HGK cKO mice (Fig. 8c). It is likely to be that these peripheral blood Th17 cells in T-HGK cKO mice are released from adipose tissue. IL-6 neutralization was used again to verify the role of IL-6 in adipose tissue-induced Th17 differentiation. The percentages of IL-6 IL-17 double-positive CD4 T cells and levels of IL-17 in adipose tissue were decreased in 10-week-old T-HGK cKO
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ARTICLE NATURE COMMUNICATIONS | DOI: 10.1038/ncomms5602
a
IP:
HGK HGK-Myc
IP:
TRAF2 KDa
55
b
IP: HGK
NS
NS
IP: Flag + +
+ +
TRAF2
TRAF2-Flag
+ +
+ +
IB
KDa
55
HGK
HGK
Flag
HGK
130 130
130
130
HGK
TRAF2
55
Pre-IP
TRAF2
HSP70
55 Purified
protein
c d e
**
In vitro kinase assays
IB
*
**
+
HGK HGK(KD)
TRAF2 KDa
+
+
+
+
Relative alpha
signal (fold)
14 12 10
8 6 4 2 0
55
55
130
Relative intensity
100
90 80 70 60 50 40 30 20 10
0
pS-TRAF2
TRAF2
HGK
HGK-Myc + + + +
TRAF2-Flag
300
400
500
600
700
800
900
1,000
1,100
1,200
1,300
1,400
1,500
1,600
1,700
1,800
m/z
g WT cKO
**
f
TRAF2-Flag
S35A
S146A
S224A
S257A
S327A
T26A
T159A
T201A
T208A
+
+ + + + + + + + + + +
HGK-Myc
TRAF2
HGK
Actin
kDa
55
130
43
IL-6-producing T cells (%)
14
12 10
8 6 4 2 0
shRNA
vector
TRAF2
shRNA
shRNA
vector
TRAF2
shRNA
Figure 4 | HGK directly phosphorylates TRAF2 at serine 35 that mediates TRAF2 degradation. (a) Co-immunoprecipitations (IP) of endogenous HGK with TRAF2 in lysates of mouse primary splenic T cells treated with chloroquine. NS, normal serum. IB, immunoblotting. (b) In vitro binding assays of puried HGK-Myc and Flag-TRAF2 proteins. (c) Signals of the interaction between HGK-Myc and TRAF2-Flag in lysates of HEK293T cells determined by amplied luminescent proximity homogeneous assays (a). Meanss.e.m. are shown. (d) In vitro kinase assays using puried HGK-Myc and Flag-TRAF2 proteins. (e) Mass spectrometry (MS)/MS fragmentation spectra of the tryptic peptides of TRAF2 contain the phosphorylation of Ser35. In vitro phosphorylated Flag-tagged TRAF2 was isolated, digested with trypsin and subjected to LC-MS/MS analyses. (f) Immunoblotting analyses of indicated molecules in lysates of HEK293T cells transfected with WT TRAF2 or TRAF2 mutants in the presence or absence of HGK plasmids. (g) IL-6 production in the mouse primary splenic T cells. T cells were transfected with GFP-TRAF2 short hairpin RNA (shRNA) and a control GFP vector. The transfectedT cells were stimulated with PMA plus ionomycin for 3 h and then determined by ow cytometry at day 3 after transfection. Data show the percentages of IL-6 producing T cells (green uorescent protein (GFP)-gated) and presented as means.e.m. from triplicate experiments. WT, littermate controls (HGKf/f mice); HGK cKO, T-HGK cKO mice. Data shown are representatives of three (ad,g) and two (e,f) independent experiments. *P-valueo0.05;
**P-valueo0.01 (two-tailed MannWhitney U-test).
mice after IL-6 neutralization (Fig. 8df). These results support the conclusion that IL-6 is an important factor for Th17 differentiation in adipose tissue of T-HGK cKO mice.
Adipose tissue microenvironment promotes Th17 differentiation. It is noticeable that adipose tissue contains a much higher frequency of Th17 cells compared with peripheral blood of T-HGK cKO mice regardless of systemic increase of IL-6 in these mice (Fig. 8c). These data suggest that the adipose tissue micro-environment may have a specic role in promoting Th17 differentiation. Th17-promoting cytokines, such as TGF-b and IL-6, are produced by adipose tissue. However, adipose tissue of T-HGK cKO mice did not secrete more TGF-b (Fig. 8d);
moreover, the systemic increase of IL-6 did not signicantly increase Th17 cells in the spleen of T-HGK cKO mice (Fig. 8c). These data suggest that adipose tissue secretes something that induces Th17 differentiation.
Adipokines are soluble bioactive mediators that are produced mainly by adipose tissue. To study whether adipose tissue-secreted adipokines promoted Th17 differentiation, adipose tissue uid was used to induce a Th17 population in vitro. The percentage of Th17 was increased by adding adipose tissue uid under in vitro Th17 differentiation conditions (Fig. 9a). In the absence of adipose tissue uid, in vitro Th17 differentiation of T-HGK cKO T cells was higher than that of WT T cells (Supplementary Fig. 7); this result may be due to overproduction of IL-6 or other unknown factors secreted from T-HGK cKO
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NATURE COMMUNICATIONS | DOI: 10.1038/ncomms5602 ARTICLE
1,200
Insulin (pg ml1 )
WTHGK cKO
* * *
WTHGK cKO
180 160 140 120 100
80 60 40
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#1 #2 #1 #2 #1 #2 #1 #2 #1 #2 #1 #2 KDa
KDa
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Individual mice : p-IRS-1 (Y896)
IRS-1
p-AKT
AKT
Tubulin
130
130
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43
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p-IRS1 (S612)
cKO cKO cKO
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Individual mice :
p-IRS1 (Y896)
IRS1
Actin
Figure 5 | T-HGK cKO mice develop insulin resistance mediated by IL-6 and IL-17. (a,b) Fasting insulin (a) and glucose levels (b) in the sera of WT and T-HGK cKO mice. n, at least 18. (c) GTT tests were performed on 12-week-old WT and T-HGK cKO mice. Glucose levels were plotted versus time post glucose injection. n 6. (d) ITT tests were performed on 12-week-old mice. Blood glucose levels were measured at indicated time periods post insulin
injection. n 6. (e,f) Immunoblotting analyses of p-IRS-1 (Y896 or S612), IRS-1, p-AKT, AKT or tubulin/actin in hepatocytes, skeletal muscle cells and
adipocytes of 16-week-old (e) or 8-week-old (f) WT and T-HGK cKO mice. Mice were injected with 2 g kg 1 glucose for 1 h after 16-h fasting. WT, littermate controls (HGKf/f mice or CD4-Cre mice); HGK cKO, T-HGK cKO mice. *P-valueo0.05; **P-valueo0.01 (ad, two-tailed Students t-test).
T cells. As adipose tissue contains multiple cell types, we next used adipocyte cell lines to rule out contribution from other types of cells in adipose tissue. Similar to adipose tissue uid, conditioned medium from mature 3T3-L1 adipocytes, but not 3T3-L1 pre-adipocytes, enhanced Th17 differentiation (Fig. 9b). Thus, the adipokines in adipose tissue of T-HGK cKO mice may drive Th17 development from IL-6-producing HGK-decient T cells in situ. These results indicate that both IL-6 and adipokines are important for Th17 differentiation in adipose tissue.
The adipokine array showed four adipokines that were potentially increased in adipose tissue uid from HGK cKO mice (Supplementary Fig. 8a). Data of enzyme-linked
immunosorbent assay (ELISA) assays further conrmed that adipose tissue of T-HGK cKO mice indeed secreted more leptin (Fig. 9c). Consistently, the increase of serum leptin levels preceded the induction of serum IL-17 levels in T-HGK cKO mice (Fig. 8b and Supplementary Fig. 8b). Leptin induced IL-17 production from in vitro-cultured primary CD4 T cells (Fig. 9d) as reported31. Furthermore, leptin synergized with
IL-6 in inducing IL-17 production from CD4 T cells (Fig. 9d). The adipose tissue uid-induced Th17 differentiation was reduced by adding anti-leptin neutralizing antibodies (Supplementary Fig. 8c). Thus, the increase of IL-6 and leptin in adipose tissue of T-HGK cKO mice may drive Th17
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ARTICLE NATURE COMMUNICATIONS | DOI: 10.1038/ncomms5602
a
WT
cKO cKO
WT
Muscle Liver
0
0.17
WT
cKO
0
Adipose tissue
19.7
2.56
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3.45
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1.23
0.74
IL-17
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IL-6 (CD4-gated cells)
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anti-CCL20
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*
anti-CCL20
21.3
0 0 30 60 90 120
Time (min)
0 0 30 60 90 120
Time (min)
f
500
105 104 103 1020
400 300 200 100
18.1 69.7
anti-CCL2
*
IL-17
**
HGK cKO
HGK cKO;CCR6 KO
0
102
103
104
105
IL-6
Figure 6 | Accumulation of IL-6/IL-17 double-positive T cells in adipose tissue mediated by CCL20-CCR6 interactions. (a) Cells were isolated from adipose tissue of 8-week-old WT or T-HGK cKO mice. Cells (without stimulation) were stained for expression of IL-6, IL-17, CD3, CD4 or CD45, and then cells were analysed by ow cytometry. Representative contour plots show percentages of IL-6- and IL-17-producing, non-stimulated CD4 T cells in the insulin-targeted tissues. (b) The peripheral blood of T-HGK cKO mice at indicated ages were isolated, stained for IL-6 and IL-17 CD4 T cells and analysed by ow cytometry. wks, weeks. (c) The levels of indicated chemokines from adipose tissue (AT) of WT or T-HGK cKO mice were determined by
ELISA assays. (d) Cells were isolated from adipose tissue of mice at day 2 after CCL20 or CCL2 neutralization. Cells (without stimulation) were stained for expression of IL-6, IL-17, CD4 or CD45, and then cells were analysed by ow cytometry. (e) GTT tests were performed on T-HGK cKO mice atday 2 after CCL2 or CCL20 neutralization. Glucose levels were plotted versus time post glucose injection. n 5 per group. (f) GTT tests were performed on
18-week-old T-HGK cKO (CD4-Cre;HGKf/f) mice (n 6) and CCR6 KO/T-HGK cKO (CD4-Cre;HGKf/f;CCR6 / ) mice (n 5). Glucose levels were
plotted versus time post glucose injection. Meanss.e.m. are shown. Glucose levels were plotted versus time. Data shown are representatives of three (a,d) and two (c,b,e,f) independent experiments. Meanss.e.m. are shown. *P-valueo0.05; **P-valueo0.01 (two-tailed MannWhitney U-test).
development from IL-6-producing HGK-decient T cells in situ. Leptin receptor is ubiquitously expressed in many tissues such as the hypothalamus, liver, ovarian and adipocytes32. To further demonstrate the role of leptin in promoting Th17 differentiation in adipose tissue of T-HGK cKO mice, oxed leptin receptor mice were used to knock out leptin receptor specically in T cells. Serum IL-17 levels were drastically reduced in T-HGK/LepR cKO (CD4-Cre;HGKf/f;leptin receptorf/f) mice, whereas serum IL-6
levels were unaffected by leptin receptor deciency (Fig. 9e). Moreover, the glucose levels were decreased in T-HGK/LepR cKO mice during GTT tests (Fig. 9f). The data strongly indicate that leptin plays a critical role in the differentiation of Th17 cells from IL-6-producing T cells in T-HGK cKO mice. Moreover, leptin levels were also decreased in adipose tissue after IL-6 neutralization (Fig. 9g). These results indicate that IL-6 secretion from HGK-decient T cells induces leptin overproduction, which
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NATURE COMMUNICATIONS | DOI: 10.1038/ncomms5602 ARTICLE
a b
*
80 Non-T cells IL-6IL-17 T cells
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Figure 7 | IL-6/IL-17 double-positive T cells are pathogenic. ELISA assay of fasting (a) IL-6/IL-17, (b) insulin and (c) glucose levels in the seraof indicated recipients 14 days after adoptive transfer. n 3 in (a); n, at
least 5 (b,c). (d) GTT tests were performed on indicated recipients at 14 days after adoptive transfer. n, at least 5. (e,f) GTT tests of 12-week-old mice at day 2 after IL-6 (e) or IL-17 (f) neutralization. Glucose levels were plotted versus time post glucose injection. n 6 per group. Data
shown are representatives of two independent experiments. Meanss.e.m. are shown. WT, littermate controls (HGKf/f mice or CD4-Cre mice);
HGK cKO, T-HGK cKO mice. *P-valueo0.05; **P-valueo0.01 (two-tailed
MannWhitney U-test).
in turn cooperates with IL-6 in promoting Th17 differentiation in adipose tissue (Fig. 10). As leptin deciency enhances Treg proliferation33, we also studied whether Treg proliferation is reduced by leptin in adipose tissue of T-HGK cKO mice. The cell number of Treg cells in adipose tissue was not signicantly decreased in T-HGK cKO mice compared with that in WT mice (Supplementary Fig. 9).
DiscussionA key nding of our study is that HGK induces lysosomal degradation of TRAF2 by directly phosphorylating TRAF2 Ser35. Previous reports indicate that TRAF2 overexpression induces IL-6 production25; our results showed that HGK deciency resulted in constitutive overexpression of TRAF2, and that IL-6 overproduction in HGK-decient T cells was mediated by TRAF2. The RING nger domain of TRAF2 is responsible for
lysosomal degradation34,35. Our results showed that Ser35 phosphorylation at the RING domain of TRAF2 by HGK played a critical role in controlling TRAF2 levels through lysosomal, but not proteasomal, degradation. Thus, HGK is a key kinase that phosphorylates TRAF2, resulting in constitutive degradation of TRAF2 and negative regulation of IL-6 production in resting T cells. Nevertheless, it remains possible that HGK may be involved in other signalling pathways.
The results of IL-6 neutralizations suggest that IL-6 overproduction by T cells may contribute to insulin resistance. In vitro studies show that IL-6 directly suppresses insulin signalling and glucose uptake in hepatocytes36 and adipocytes37,38, and that long-term IL-6 treatment inhibits insulin signalling in skeletal muscle cells39,40. The in vivo roles of IL-6 are much more complex41. Acutely elevated IL-6 enhances insulin secretion from the pancreas and improves glucose tolerance in mice42, whereas chronic IL-6 infusion causes hepatic insulin resistance in mice43. Global deletion of IL-6 in mice leads to mature-onset obesity and glucose intolerance via the effect of IL-6 on the brain44, while IL-6 knockout mice display either higher or lower insulin levels45,46. These conicting results could be due to the difference in mouse genetic backgrounds or housing conditions45. In addition, the development of insulin resistance also depends on where IL-6 acts and how the target cells response to IL-6 (refs 4750). Myeloid cell-specic IL-6 receptor knockout mice display M1 macrophage-mediated inammation and insulin resistance47, while IL-6 overexpression in the brain and lung of the transgenic mice results in increased insulin sensitivity via enhancing leptin action in hypothalamus48. Liver-specic IKK transgenic mice develop IL-6-dependent hepatic insulin resistance49, while skeletal muscle-specic IL-6 electro-transferred mice display insulin resistance50. Our results indicate that IL-6-overproducing T cells in adipose tissue induce insulin resistance. Taken together, insulin resistance may be determined by whether high levels of IL-6 are induced in the microenvironment of insulin target tissues.
The results of adoptive transfer experiments and IL-17 neutralizations indicate that IL-6-producing Th17 cells contribute to the pathogenesis of T2D. Our nding is consistent with a previous report that IL-17 inhibits glucose uptake51. Our results also showed that the body weights of T-HGK cKO mice were slightly increased and even decreased after 24 weeks of age, which may be due to the inhibition of adipogenesis by IL-17 (ref. 51). Furthermore, IL-17-negative IL-6 T cells were detected in T-HGK cKO mice before 7 weeks of age, preceding hyperglycemia induction. These data suggest that induction of Th17 differentiation from IL-6 T cells is a critical mechanism in the pathogenesis of insulin resistance.
Although increased IL-6-producing T cells were circulating in T-HGK cKO mice, adipose tissue was the initial target for insulin resistance. This result indicates that IL-6-producing HGK /
T cells act locally in adipose tissue. IL-6 neutralization suppressed the secretion of leptin and IL-17, as well as the population of Th17 in adipose tissue. It is known that IL-6 plus glucocorticoid stimulates leptin production in adipocytes52, and that leptin promotes Th17 differentiation53,54. In this report, we showed that leptin receptor deciency in T cells resulted in the inhibition of Th17 differentiation and the enhancement of insulin sensitivity in T-HGK cKO mice. Moreover, leptin synergized with IL-6 in inducing IL-17 production from T cells. Our data indicate that IL-6 cooperates with leptin in induction of Th17 differentiation in adipose tissue. Taken together, our data support the model of reciprocal regulation between T cells and adipocytes: the circulating IL-6-producing T cells inltrate adipose tissue and induce leptin secretion from adipocytes, which in turn provides
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ARTICLE NATURE COMMUNICATIONS | DOI: 10.1038/ncomms5602
70 WT
HGK cKO
Age (week)
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60504030 *
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(pg ml1 )
Figure 8 | IL-6 promotes Th17 differentiation in adipose tissue of T-HGK cKO mice. (a) Fasting IL-6 and (b) IL-17 levels in mouse sera were measured by ELISA assays. n 1823. (c) The percentages of IL-6- and IL-17-producing, non-stimulated CD4 T cells in the adipose tissue (AT), spleen (Sp),
lymph nodes (LN) and peripheral blood (PB) of 10-week-old mice were analysed by ow cytometry. (d) The levels of indicated cytokines from adipose tissue of mice were determined by ELISA assays. (e) Contour plots show the percentages of IL-6- and IL-17-producing, non-stimulated CD4 T cells from adipose tissue of mice at 2 days after IL-6 neutralization. n 5. (f) The levels of IL-6 and IL-17 from adipose tissue of mice at 2 days after IL-6 neutralization.
Data shown are representatives of three (c) and two (e,f) independent experiments. Data are expressed as means.e.m. WT, littermate controls (HGKf/f mice); HGK cKO, T-HGK cKO mice. *P-valueo0.05; **P-valueo0.01 (a,b, two-tailed Students t-test; d,f, two-tailed MannWhitney U-test).
an appropriate microenvironment for Th17 differentiation. Thus, the induction of adipose tissue IL-6 IL-17 double-positive
Th17 cells leads to insulin resistance.
Our results derived from T-HGK cKO mice suggest that HGK deciency-induced IL-6 overproduction in T cells may be involved in T2D pathogenesis. Through screening 1,769 DNA samples from the peripheral blood of prediabetic Europeans, a previous study found that two singlenucleotide polymorphisms (SNPs) in the HGK locus are associated with increased glucose levels in patients; moreover, one of these two HGK SNPs and a third SNP are associated with enhanced serum IL-6 but not with TNF-a levels55. Thus, this report and our ndings support the idea that HGK downregulation or dysfunction in blood cells is important for the pathogenesis of T2D.
In summary, loss of HGK in T cells results in TRAF2 overexpression and IL-6 overproduction, which further induces Th17 differentiation; these Th17 cells cause insulin resistance. Our report unveils critical molecular and cellular mechanisms of insulin resistance and provides a novel insight in the reciprocal regulation between the immune system and metabolism. Moreover, T-cell-specic HGK conditional knockout mice provide a novel animal model for studying T2D.
Materials and methods
Mice. A mouse HGK oxed allele (HGKox) was generated in which exon 1 and exon 2 of HGK are anked by loxP sites (Fig. 1a). Mice homozygous for HGK oxed allele were bred with CD4-Cre transgenic mice. As CD4 was expressed in double-positive (CD4 CD8 ) phase during T-cell development, Cre recombinase
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NATURE COMMUNICATIONS | DOI: 10.1038/ncomms5602 ARTICLE
Th17 condition
0.25 l AT fluid 0.75 l AT fluid
105
104
103
102
0
1.1 25.0 31.6 40.2
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IL-17
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102
CD4 (gated cells)
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Th17 condition3T3-L1 pre-adipocyte 3T3-L1 Adipocyte
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IL-17
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102CD4 (gated cells)
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***
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*
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Resistin PTX2 PAl-1
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HGK cKO + anti-lL-6
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HGK/LepR cKO
Serum cytokines (pg ml1 )
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**
HGK cKO HGK/LepR ckO
*
Glucose (mg dl1 )
*
*
*
AT leptin (pg ml1 )
6,000
4,000
2,000
0 Leptin
**
*
0 IL-6 IL-17
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Time (min)
Figure 9 | Leptin cooperates with IL-6 to promote Th17 differentiation. (a,b) CD4CD25 T cells were puried from spleens of WT mice and cultured for 4 days under Th17 differentiation conditions in the presence or absence adipose tissue uids (a) or 3T3-L1 adipocyte conditioned medium (b).
After Th17 differentiation, Tcells were stimulated with PMA and ionomycin, and analysed for IL-17 expression by intracellular staining. Contour plots depict IL-17-producing CD4 T cells. Numbers indicate the percentages of cells in the quadrants. (c) The levels of indicated adipokines from adipose tissue of WT and T-HGK cKO mice were determined by ELISA assays. (d) The IL-17 levels in supernatants of the primary T cells stimulated with leptin and/or IL-6 for 3 days were determined by ELISA assays. (e) IL-6 and IL-17 levels in the sera of 16-week-old T-HGK cKO (CD4-Cre;HGKf/f) mice and T-HGK/LepR cKO (CD4-Cre;HGKf/f;leptin receptorf/f) mice were measured by ELISA assays. n 6. (f) GTT tests were performed on 16-week-old T-HGK cKO mice and
T-HGK/LepR cKO mice. Glucose levels were plotted versus times post glucose injection. (g) The leptin levels in adipose tissue of mice after IL-6 neutralization. Data shown are representatives of three (a,b,d) and two (c,e,f,g) independent experiments. Data are expressed as means.e.m. *P-valueo0.05; **P-valueo0.01; ***P-valueo0.001 (two-tailed MannWhitney U-test).
driven by the CD4 promoter induced the excision of the oxed HGK gene in double-positive thymocytes and mature CD4 or CD8 T cells. Mice were backcrossed to C57BL/6 background for ve generations (F5; B97%) and F10.
Sex-matched littermate HGKf/f and CD4-Cre transgenic mice were used as control mice in all experiments; the serum glucose/cytokine levels in these control mice were similar to those in WT B6 mice. The data presented in this study were performed on sex-matched, 2- to 26-week-old littermates. For body weight measurement, 2-week-old sex-matched mice were monitored for 24 weeks. For GTT and ITT experiments, 12-week-old, sex-matched mice were used. For cell transfer experiments, 16-week-old T-HGK cKO mice and 10-week-old WT mice were used. Mice were randomly assigned to in vivo animal experiments. Floxed leptin receptor
mice56 (JAX008327) and CCR6 knockout mice57 (JAX013061) were purchased from the Jackson Laboratory. Mice were maintained in temperature-controlled and pathogen-free cages. All mice were used according to the protocols and guidelines approved by the Institutional Animal Care and Use Committee of the National Health Research Institutes.
Cell lines. Human Jurkat T leukemia cells (American Type Cell Culture: TIB-152) were cultured in RPMI-1640 medium (Invitrogen) containing 10% FCS (Invitrogen) plus penicillin (10 units ml 1) and streptomycin (10 mg ml 1) (Invitrogen).
HEK293T cells (American Type Cell Culture: CRL-11268) were cultured in DMEM
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ARTICLE NATURE COMMUNICATIONS | DOI: 10.1038/ncomms5602
T cell Adipocyte Insulin
HGK
TRAF2
IL-6
IL-17
IL-6+
IL-6
Leptin
IL-6+IL-17+ (Th17)
Glucose uptake
Th17 differentiation in adipose tissue
Figure 10 | Schematic diagram of HGK-mediated reciprocal regulation between T cells and adipocytes. HGK deciency leads to constitutive TRAF2 overexpression and IL-6 overproduction in T cells. The circulating IL-6-producing T cells inltrate to adipose tissue and enhance the production of leptin, which in turn cooperates with IL-6 to induce Th17 differentiation. The induction of adipose tissue Th17 cells leads to insulin resistance.
medium (Invitrogen) containing 10% FCS plus penicillin (10 units ml 1) and streptomycin (10 mg ml 1). The cells were free of mycoplasma contamination.
Reagents and plasmids. HGK antibody was generated by immunization of rabbits with individual peptides (HGK epitope: HAPEPKPHYDPADRAREV). Anti-actin and anti-tubulin antibodies were purchased from Sigma. Anti-p-IRS-1 (S612; 2386), anti-p-IRS-1 (Y896; 3070) and anti-IRS-1 (#2382) antibodies were purchased from Cell Signaling. Anti-TRAF1 (H-3), anti-TRAF2 (H-10), anti-TRAF3 (M-51), anti-TRAF4 (C-20), anti-TRAF5 (C-19) and anti-TRAF6 (D-10) antibodies were purchased from Santa Cruz. All rst antibodies for immunoblotting were used in 1:1,000 dilution. The expression plasmids for HGK and HGK kinase-dead mutant were as described previously8. CFP-tagged HGK, Flag-tagged TRAF2 and YFP-tagged TRAF2 were constructed by subcloning the individual complementary DNA into pCMV6-AC-CFP, pCMV6-AC-Flag and pCMV6-ACYFP vectors (OriGene Technologies), respectively. The TRAF2 short hairpin RNA plasmid was established by the National RNAi Core Facility (Taiwan) and its repeat insertion (50-GCGATCTTCATCAAAGCTATT-30) was subcloned into pSUPER-GFP vector (OligoEngine, Inc.). Lysotracker was purchased from Molecular Probes.
Immunoblotting analysis. The kinase reaction mixtures or cell extracts were fractionated on 68% SDSpolyacrylamide gels and transferred onto polyvinylidene diuoride membranes. The membranes were incubated with individual primary antibodies and then with horseradish peroxidase-conjugated secondary antibodies. The horseradish peroxidase substrate reaction was performed using chemiluminescence detection system and detected by charge coupled device camera (BioSpectrum 500 imaging system). Full blots are shown in Supplementary Fig. 10.
Glucose tolerance and insulin tolerance tests. For GTT tests, mice were intraperitoneally injected with 2 g kg 1 glucose after 16 h fasting. Glucose and insulin levels were measured from blood samples collected from mouse tails. For
ITT tests, mice were injected intraperitoneally with 0.75 U kg 1 insulin after 16 h fasting, followed by measurement of blood glucose levels every 15 min. Blinding experiments were done in GTT and ITT tests.
IL-6 neutralization. Mice at 8 weeks of age were injected via tail veins with 50 mg anti-IL-6 antibodies (MP5-20F3; BioLegend) or control IgG antibodies (RTK2071; BioLegend) every other day for 10 days, followed by GTT tests at day 12. In the case of Fig. 8e,f, IL-6 neutralization was conducted in mice at 8 weeks of age.
IL-17 neutralization. Mice at 10 weeks of age were injected via tail veins with 45 mg anti-IL-17 antibodies (MAB421; R&D) or control IgG antibodies (MAB006; R&D) every other day for 10 days, followed by GTT tests 2 days after the last injection.
Cell transfer experiment. Mouse CD3 T cells were negatively selected from the spleen, lymph nodes and peripheral blood of 16-week-old mice. Most (490%) of
IL-6 IL-17 T cells from T-HGK cKO mice expressed both CCR4 and CCR6. In the second round of purication, IL-6 IL-17 T cells were isolated from the
CD3 T cells using magnetically coupled antibodies against mouse CCR4. The remaining population was used as control cells. Cells were labelled with the cytosolic dye carboxyuorescein succinimidyl ester (CFSE) and then injected into 10-week-old WT mice (2.5 106 cells per mouse) intravenously.
Measurements of glucose and cytokines. Blood glucose concentrations were measured using ACCU-CHEK Active test strips and blood glucose meter (Roche). Serum insulin concentrations were measured by solid phase two-site enzyme immunoassays (Mercodia). Adipokines were measured by ELISA assay (R&D). Cytokines and chemokines were assayed by ELISA assay. The RANTES ELISA kit was from Proteck; the TGF-b ELISA kit was from R&D; the rest was from eBioscience.
Flow cytometry analyses. For the staining of cell surface markers, cells were harvested, washed with 2% fetal bovine serum (FBS in PBS), and stained with individual antibodies (1:100 dilution) for 30 min at room temperature. For intra-cellular staining, peripheral blood cells were permeabilized in 200 ml Cytox/
Cytoperm buffer (BD Biosciences) for 16 h and washed with Perm-Wash buffer, and then incubated with individual antibodies (1:50 dilution) for 2 h. For peripheral blood leukocytes isolated from human subjects, cells were immediately treated with Golgi-stop before staining. Data were collected with FACSCanto II (BD Biosciences) and analysed using FlowJo software.
The antibodies used for staining are as follows: anti-mCD4-FITC (GK1.5), anti-mCD8-APC-Cy7 (53-6.7), anti-mB220 (RA3-6B2), anti-mCD4-Pacic blue (RM4-5), anti-mCD11b-APC (M1/70), anti-mIFN-g-FITC (XMG1.2) and anti-mIL-17-Alex 647 (BL168) antibodies, which were purchased from BioLegend; anti-mGr-1-PerCP-Cy5.5 (RB6-8C5) and anti-mIL-6-PE (MP5-20F3) antibodies, which were purchased from BD Biosciences.
Transient transfection of primary T cells. For transient transfection assays, primary T cells were transfected using the Neon Transfection System (Invitrogen Corp.). The settings for human or mouse primary T cells (1 107) were 2,200 V,
duration of 20 ms and 1 pulse. To induce cytokine production of 3-day-cultured T cells, the primary T cells were stimulated with 5 mg ml 1 PMA plus ionomycin (Sigma) for 3 h at 37 C.
a-Technology/proteinprotein interaction assays. Amplied luminescent proximity homogeneous assays (a) technology experiments were performed according to the manufacturers protocol (Perkin Elmer Life Sciences). HEK293T cells were co-transfected with Myc-HGK plus either Flag-TRAF2 or Myc/Flag vector for 24 h. The cells were lysed in lysis buffer (50 mM TrisHCl, 125 mM NaCl, 5% glycerol, 0.2% NP40, 1.5 mM MgCl2, 25 mM NaF and 1 mM Na3VO4).
The transfectant lysates were incubated with acceptor beads (AlphaScreen ani-Myc beads, Perkin Elmer) for 60 min and then incubated with donor beads (AlphaLISA anti-Flag beads, Perkin Elmer) for another 60 min. If the donoracceptor pair is within 200 nm, a chemiluminescent signal (a-signal) will be generated58. The a-signal was determined by EnVision 2104 Multilabel Reader (Perkin Elmer).
CCL2 and CCL20 neutralization. Mice at 12 weeks of age were injected via tail veins with 45 mg neutralizing antibodies or control IgG antibodies (AB-108-C; R&D) every other day for 10 days, followed by GTT tests 2 days after the fth (nal) injection. The neutralizing antibodies used were anti-CCL2 antibodies (AB-479-NA; R&D) and anti-CCL20 antibodies (AF760; R&D).
Preparation of mouse tissue immune cells and uids. Tissues were homogenized by gentleMACS Dissociator (Miltenyi Biotec) to obtain single-cell suspension. After incubation in RIMP medium with collagenase II (Sigma) at 37 C for 15 min, cell mixtures were homogenized again and washed with 15 ml PBS. Immune cells were enriched by Ficoll extraction. For tissue uid collection, tissues were extirpated, rinsed with saline to remove blood from the surface and blotted gently with tissue paper. Tissues weighing 0.2 g were transferred intact to Eppendorf tubes. Tissues were roughly torn on ice using curved forceps. Tissue uids were isolated immediately by centrifugation at 13,000 r.p.m. at 4 C for20 min, and then uids without cells were collected.
In vitro Th17 differentiation. CD4 CD25 cells were puried from lymph node of mice. Cells (2.5 105) were cultured in 500 ml medium in 48-well plates coated
with anti-CD3 (2 mg ml 1) and anti-CD28 (3 mg ml 1) antibodies. For Th17 differentiation, cells were cultured in medium containing 10 ng ml 1 IL-6,2.5 ng ml 1 TGF-b, 25 ng ml 1 IL-23, 2.5 mg ml 1 anti-IL-4 and 2.5 mg ml 1 anti-IFN-g antibodies.
3T3-L1 adipocyte differentiation. 3T3-L1 broblasts were cultured in six-well plates in 2 ml DMEM supplemented with 10% (v/v) FBS. At 2 days post seeding, cells were induced to differentiate into adipocytes with DMEM supplemented with
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NATURE COMMUNICATIONS | DOI: 10.1038/ncomms5602 ARTICLE
10% FBS, 1 mg ml 1 insulin (Novo Nordisk), 1 mM dexamethasone (Sigma),0.5 mM isobutylmethylxanthine (Sigma) and 1 mM dexamethasone (Sigma). After 3 days, the media were replaced with 10% FBS DMEM. The cells were subsequently re-fed every 48 h with 10% FBS DMEM. The supernatants were collected at 9 days post differentiation.
Liquid chromatographymass spectrometry. Specic protein bands from Instant blue-stained SDSPAGE gels were excised, destained and digested with trypsin. The resulting peptide mixtures were loaded on a nano Acquity system (Waters, Milford, MA) connected to an LTQ-Orbitrap XL hybrid mass spectrometer (Thermo Fisher Scientic, Bremen, Germany) equipped with a nanospray interface (Proxeon, Odense, Denmark). Peptide mixtures were loaded onto a 75-mm ID, 25-cm length C18 BEH column (Waters) packed with 1.7 mm particles with a pore width of 130 and were separated using a segmented gradient (540% solvent B in 60 min) at a ow rate of 300 nl min 1 and a column temperature of 35 C. Solvent
A was 0.1% formic acid in water. The mass spectrometer was operated in data-dependant mode. Briey, full-scan mass spectrometry (MS) spectra were acquired in the orbitrap (m/z 3501,600) with the resolution set to 60,000 at m/z 400 and automatic gain control target at 106. The ten most intense ions were sequentially isolated for CID MS/MS fragmentation and detection in the linear ion trap (automatic gain control target at 7,000) with previously selected ions dynamically excluded for 90 s. Ions with singly and unrecognized charge state were also excluded. To improve the fragmentation spectra of the phosphopeptides, multistage activation at 97.97, 48.99 and 32.66 Thomson relative to the precursor ion was enabled in all MS/MS events. All the measurements in the orbitrap were performed with the lock-mass option for internal calibration.
Statistical analyses. All experiments were repeated at least three times. Data are presented as means.e.m. KolmogorovSmirnov and ShapiroWilk tests for normality of each column data were performed using SPSS 19 software. The statistical signicance between two unpaired groups was analysed using two-tailed Students t-test for normally distributed data or using the two-tailed Mann Whitney U-test for non-normally distributed data. Power calculations were performed using G*Power 3.1.6 software (available at http://www.psycho.uniduesseldorf.de/abteilungen/aap/gpower3/
Web End =http://www.psycho. http://www.psycho.uniduesseldorf.de/abteilungen/aap/gpower3/
Web End =uniduesseldorf.de/abteilungen/aap/gpower3/ download-and-register). The statistical analyses were independently veried by two senior biostatisticians.
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Acknowledgements
We thank the Core Facilities and the Laboratory Animal Center of the National Health
Research Institutes (NHRI, Taiwan) for tissue sectioning/haematoxylin and eosin
Author contributions
H.-C.C. designed and performed experiments, analysed and interpreted data, and wrote
the manuscript. W.-H.H.S. provided technical and material support. Y.-T.L., C.-Y.T.,
C.-Y.Y., Y.-J.C, P.-Y.H., J.-P.L. and L.-L.C. performed experiments; X.W. assisted in the
experimental design and manuscript writing. M.X. and M.D.S. generated the T-HGK
cKO mice. T.-H.T. conceived the study, supervised experiments, and wrote the
manuscript.
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How to cite this article: Chuang, H.-C. et al. HGK/MAP4K4 deciency induces TRAF2
stabilization and Th17 differentiation leading to insulin resistance. Nat. Commun. 5:4602
doi: 10.1038/ncomms5602 (2014).
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Copyright Nature Publishing Group Aug 2014
Abstract
Proinflammatory cytokines play important roles in insulin resistance. Here we report that mice with a T-cell-specific conditional knockout of HGK (T-HGK cKO) develop systemic inflammation and insulin resistance. This condition is ameliorated by either IL-6 or IL-17 neutralization. HGK directly phosphorylates TRAF2, leading to its lysosomal degradation and subsequent inhibition of IL-6 production. IL-6-overproducing HGK-deficient T cells accumulate in adipose tissue and further differentiate into IL-6/IL-17 double-positive cells. Moreover, CCL20 neutralization or CCR6 deficiency reduces the Th17 population or insulin resistance in T-HGK cKO mice. In addition, leptin receptor deficiency in T cells inhibits Th17 differentiation and improves the insulin sensitivity in T-HGK cKO mice, which suggests that leptin cooperates with IL-6 to promote Th17 differentiation. Thus, HGK deficiency induces TRAF2/IL-6 upregulation, leading to IL-6/leptin-induced Th17 differentiation in adipose tissue and subsequent insulin resistance. These findings provide insight into the reciprocal regulation between the immune system and the metabolism.
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