Myostatin serum levels in children with type 1 diabetes mellitus.


Journal

Hormones (Athens, Greece)
ISSN: 2520-8721
Titre abrégé: Hormones (Athens)
Pays: Switzerland
ID NLM: 101142469

Informations de publication

Date de publication:
Dec 2021
Historique:
received: 05 04 2021
accepted: 27 08 2021
pubmed: 7 9 2021
medline: 25 2 2022
entrez: 6 9 2021
Statut: ppublish

Résumé

Type 1 diabetes mellitus (T1DM) can cause several complications, among them myopathy, which can appear even in adolescents. This is of importance, since skeletal muscle is the largest of the insulin-sensitive tissues and thus plays a significant role in glucose homeostasis. A prime regulator of skeletal muscle mass is myostatin, a protein which has a negative role in skeletal muscle development but also in glucose homeostasis, causing insulin resistance. Since myopathy is a complication of T1DM and myostatin is a fundamental regulator of skeletal muscle and is also involved in glucose homeostasis, we investigated the serum levels of myostatin in children with T1DM. We determined myostatin serum levels using ELISA in 87 children with T1DM aged 10.62 ± 3.94 years, and in 75 healthy children aged 10.46 ± 3.32 years old. Myοstatin was significantly elevated in T1DM compared to the healthy control children (23.60 ± 7.70 vs 16.74 ± 6.95 ng/ml, p < 0.0001). Myostatin was not correlated with body mass index (BMI) SD or hemoglobin A1c (HbA1c). Children with T1DM have significantly higher serum levels of myostatin compared to healthy children of the same age and BMI SD. The elevated myostatin in T1DM could reflect impaired muscle function and/or glucose metabolism, or could represent a homeostatic mechanism.

Identifiants

pubmed: 34486100
doi: 10.1007/s42000-021-00317-y
pii: 10.1007/s42000-021-00317-y
doi:

Substances chimiques

Glycated Hemoglobin A 0
Insulin 0
Myostatin 0
Glucose IY9XDZ35W2

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

777-782

Informations de copyright

© 2021. Hellenic Endocrine Society.

Références

Katz LD, Glickman MG, Rapoport S, Ferrannini E, DeFronzo RA (1983) Splanchnic and peripheral disposal of oral glucose in man. Diabetes 32:675–679. https://doi.org/10.2337/diab.32.7.675
doi: 10.2337/diab.32.7.675 pubmed: 6862113
Baron AD, Brechtel G, Wallace P, Edelman SV (1988) Rates and tissue sites of non-insulin- and insulin-mediated glucose uptake in humans. Am J Physiol 255:E769–E774. https://doi.org/10.1152/ajpendo.1988.255.6.E769
doi: 10.1152/ajpendo.1988.255.6.E769 pubmed: 3059816
Krause MP, Riddell MC, Hawke TJ (2011) Effects of type 1 diabetes mellitus on skeletal muscle: clinical observations and physiological mechanisms. Pediatr Diabetes 12:345–364. https://doi.org/10.1111/j.1399-5448.2010.00699.x
doi: 10.1111/j.1399-5448.2010.00699.x pubmed: 20860561
Andersen H, Gadeberg PC, Brock B, Jakobsen J (1997) Muscular atrophy in diabetic neuropathy: a stereological magnetic resonance imaging study. Diabetologia 40:1062–1069. https://doi.org/10.1007/s001250050788
doi: 10.1007/s001250050788 pubmed: 9300243
Andersen H, Schmitz O, Nielsen S (2005) Decreased isometric muscle strength after acute hyperglycaemia in Type 1 diabetic patients. Diabet Med 22:1401–1407. https://doi.org/10.1111/j.1464-5491.2005.01649.x
doi: 10.1111/j.1464-5491.2005.01649.x pubmed: 16176203
Maratova K, Soucek O, Matyskova J et al (2018) Muscle functions and bone strength are impaired in adolescents with type 1 diabetes. Bone 106:22–27. https://doi.org/10.1016/j.bone.2017.10.005
doi: 10.1016/j.bone.2017.10.005 pubmed: 29017892
McPherron AC, Lawler AM, Lee SJ (1997) Regulation of skeletal muscle mass in mice by a new TGF-beta superfamily member. Nature 387:83–90. https://doi.org/10.1038/387083a0
doi: 10.1038/387083a0 pubmed: 9139826
Grobet L, Pirottin D, Farnir F et al (2003) Modulating skeletal muscle mass by postnatal, muscle-specific inactivation of the myostatin gene. Genesis 35:227–238. https://doi.org/10.1002/gene.10188
doi: 10.1002/gene.10188 pubmed: 12717734
Reisz-Porszasz S, Bhasin S, Artaza JN et al (2003) Lower skeletal muscle mass in male transgenic mice with muscle-specific overexpression of myostatin. Am J Physiol Endocrinol Metab 285:E876–E888. https://doi.org/10.1152/ajpendo.00107.2003
doi: 10.1152/ajpendo.00107.2003 pubmed: 12824080
Guo T, Bond ND, Jou W, Gavrilova O, Portas J, McPherron AC (2012) Myostatin inhibition prevents diabetes and hyperphagia in a mouse model of lipodystrophy. Diabetes 61:2414–2423. https://doi.org/10.2337/db11-0915
doi: 10.2337/db11-0915 pubmed: 22596054 pmcid: 3447905
Wilkes JJ, Lloyd DJ, Gekakis N (2009) Loss-of-function mutation in myostatin reduces tumor necrosis factor alpha production and protects liver against obesity-induced insulin resistance. Diabetes 58:1133–1143. https://doi.org/10.2337/db08-0245
doi: 10.2337/db08-0245 pubmed: 19208906 pmcid: 2671051
Guo T, Jou W, Chanturiya T, Portas J, Gavrilova O, McPherron AC (2009) Myostatin inhibition in muscle, but not adipose tissue, decreases fat mass and improves insulin sensitivity. PLoS ONE 4:e4937. https://doi.org/10.1371/journal.pone.0004937
doi: 10.1371/journal.pone.0004937 pubmed: 19295913 pmcid: 2654157
Hittel DS, Berggren JR, Shearer J, Boyle K, Houmard JA (2009) Increased secretion and expression of myostatin in skeletal muscle from extremely obese women. Diabetes 58:30–38. https://doi.org/10.2337/db08-0943
doi: 10.2337/db08-0943 pubmed: 18835929 pmcid: 2606890
Garikipati DK, Rodgers BD (2012) Myostatin inhibits myosatellite cell proliferation and consequently activates differentiation: evidence for endocrine-regulated transcript processing. J Endocrinol 215:177–187. https://doi.org/10.1530/JOE-12-0260
doi: 10.1530/JOE-12-0260 pubmed: 22872758
Wang F, Liao Y, Li X, Ren C, Cheng C, Ren Y (2012) Increased circulating myostatin in patients with type 2 diabetes mellitus. J Huazhong Univ Sci Technolog Med Sci 32:534–539. https://doi.org/10.1007/s11596-012-0092-9
doi: 10.1007/s11596-012-0092-9 pubmed: 22886966
Amor M, Itariu BK, Moreno-Viedma V et al (2018) Serum myostatin is upregulated in obesity and correlates with insulin resistance in humans. Exp Clin Endocrinol Diabetes
Tanaka M, Masuda S, Yamakage H et al (2018) Role of serum myostatin in the association between hyperinsulinemia and muscle atrophy in Japanese obese patients. Diabetes Res Clin Pract 142:195–202. https://doi.org/10.1016/j.diabres.2018.05.041
doi: 10.1016/j.diabres.2018.05.041 pubmed: 29859272
Ehehalt S, Schweizer R, Blumenstock G et al (2011) Investigation of myostatin serum levels before and after a 6-month lifestyle intervention program in obese children. Exp Clin Endocrinol Diabetes 119:238–242
doi: 10.1055/s-0030-1267964
Dial AG, Monaco CMF, Grafham GK et al (2020) Muscle and serum myostatin expression in type 1 diabetes. Physiol Rep 8:e14500. https://doi.org/10.14814/phy2.14500
doi: 10.14814/phy2.14500 pubmed: 32652899 pmcid: 7354085
Yki-Jarvinen H, Koivisto VA (1986) Natural course of insulin resistance in type I diabetes. N Engl J Med 315:224–230. https://doi.org/10.1056/NEJM198607243150404
doi: 10.1056/NEJM198607243150404 pubmed: 3523247
Amiel SA, Sherwin RS, Simonson DC, Lauritano AA, Tamborlane WV (1986) Impaired insulin action in puberty. A contributing factor to poor glycemic control in adolescents with diabetes. N Engl J Med 315:215–219. https://doi.org/10.1056/NEJM198607243150402
doi: 10.1056/NEJM198607243150402 pubmed: 3523245
Donga E, Dekkers OM, Corssmit EP, Romijn JA (2015) Insulin resistance in patients with type 1 diabetes assessed by glucose clamp studies: systematic review and meta-analysis. Eur J Endocrinol 173:101–109. https://doi.org/10.1530/EJE-14-0911
doi: 10.1530/EJE-14-0911 pubmed: 25899581
Peltoniemi P, Yki-Jarvinen H, Oikonen V et al (2001) Resistance to exercise-induced increase in glucose uptake during hyperinsulinemia in insulin-resistant skeletal muscle of patients with type 1 diabetes. Diabetes 50:1371–1377. https://doi.org/10.2337/diabetes.50.6.1371
doi: 10.2337/diabetes.50.6.1371 pubmed: 11375338
Nadeau KJ, Regensteiner JG, Bauer TA et al (2010) Insulin resistance in adolescents with type 1 diabetes and its relationship to cardiovascular function. J Clin Endocrinol Metab 95:513–521. https://doi.org/10.1210/jc.2009-1756
doi: 10.1210/jc.2009-1756 pubmed: 19915016
Schauer IE, Snell-Bergeon JK, Bergman BC et al (2011) Insulin resistance, defective insulin-mediated fatty acid suppression, and coronary artery calcification in subjects with and without type 1 diabetes: the CACTI study. Diabetes 60:306–314. https://doi.org/10.2337/db10-0328
doi: 10.2337/db10-0328 pubmed: 20978091
Cree-Green M, Stuppy JJ, Thurston J et al (2018) Youth with type 1 diabetes have adipose, hepatic, and peripheral insulin resistance. J Clin Endocrinol Metab 103:3647–3657. https://doi.org/10.1210/jc.2018-00433
doi: 10.1210/jc.2018-00433 pubmed: 30020457 pmcid: 6179173
Bjornstad P, Schäfer M, Truong U et al (2018) Metformin improves insulin sensitivity and vascular health in youth with type 1 diabetes mellitus. Circulation 138:2895–2907. https://doi.org/10.1161/CIRCULATIONAHA.118.035525
doi: 10.1161/CIRCULATIONAHA.118.035525 pubmed: 30566007 pmcid: 6428045
Monaco CMF, Hughes MC, Ramos SV et al (2018) Altered mitochondrial bioenergetics and ultrastructure in the skeletal muscle of young adults with type 1 diabetes. Diabetologia 61:1411–1423. https://doi.org/10.1007/s00125-018-4602-6
doi: 10.1007/s00125-018-4602-6 pubmed: 29666899
Monaco CMF, Bellissimo CA, Hughes MC et al (2020) Sexual dimorphism in human skeletal muscle mitochondrial bioenergetics in response to type 1 diabetes. Am J Physiol Endocrinol Metab 318:E44–E51. https://doi.org/10.1152/ajpendo.00411.2019
doi: 10.1152/ajpendo.00411.2019 pubmed: 31794260
Heyman E, Daussin F, Wieczorek V et al (2020) Muscle oxygen supply and use in type 1 diabetes, from ambient air to the mitochondrial respiratory chain: is there a limiting step? Diabetes Care 43:209–218. https://doi.org/10.2337/dc19-1125
doi: 10.2337/dc19-1125 pubmed: 31636081
Cree-Green M, Newcomer BR, Brown MS et al (2015) Delayed skeletal muscle mitochondrial ADP recovery in youth with type 1 diabetes relates to muscle insulin resistance. Diabetes 64:383–392. https://doi.org/10.2337/db14-0765
doi: 10.2337/db14-0765 pubmed: 25157095
Assyov YS, Velikova TV, Kamenov ZA (2017) Myostatin and carbohydrate disturbances. Endocr Res 42:102–109. https://doi.org/10.1080/07435800.2016.1198802
doi: 10.1080/07435800.2016.1198802 pubmed: 27356124
Brandt C, Nielsen AR, Fischer CP, Hansen J, Pedersen BK, Plomgaard P (2012) Plasma and muscle myostatin in relation to type 2 diabetes. PLoS ONE 7:e37236. https://doi.org/10.1371/journal.pone.0037236
doi: 10.1371/journal.pone.0037236 pubmed: 22615949 pmcid: 3353926
Garcia-Fontana B, Reyes-Garcia R, Morales-Santana S et al (2016) Relationship between myostatin and irisin in type 2 diabetes mellitus: a compensatory mechanism to an unfavourable metabolic state? Endocrine 52:54–62. https://doi.org/10.1007/s12020-015-0758-8
doi: 10.1007/s12020-015-0758-8 pubmed: 26438394
Coleman SK, Rebalka IA, D’Souza DM, Deodhare N, Desjardins EM, Hawke TJ (2016) Myostatin inhibition therapy for insulin-deficient type 1 diabetes. Sci Rep 6:32495. https://doi.org/10.1038/srep32495
doi: 10.1038/srep32495 pubmed: 27581061 pmcid: 5007491
Jeong J, Conboy MJ, Conboy IM (2013) Pharmacological inhibition of myostatin/TGF-β receptor/pSmad3 signaling rescues muscle regenerative responses in mouse model of type 1 diabetes. Acta Pharmacol Sin 34:1052–1060. https://doi.org/10.1038/aps.2013.67
doi: 10.1038/aps.2013.67 pubmed: 23770987 pmcid: 4003029
Nuutila P, Knuuti J, Ruotsalainen U et al (1993) Insulin resistance is localized to skeletal but not heart muscle in type 1 diabetes. Am J Physiol 264:E756–E762. https://doi.org/10.1152/ajpendo.1993.264.5.E756
doi: 10.1152/ajpendo.1993.264.5.E756 pubmed: 8498497
Kelley DE, Goodpaster B, Wing RR, Simoneau JA (1999) Skeletal muscle fatty acid metabolism in association with insulin resistance, obesity, and weight loss. Am J Physiol 277:E1130–E1141. https://doi.org/10.1152/ajpendo.1999.277.6.E1130
doi: 10.1152/ajpendo.1999.277.6.E1130 pubmed: 10600804
Zhang C, McFarlane C, Lokireddy S et al (2012) Inhibition of myostatin protects against diet-induced obesity by enhancing fatty acid oxidation and promoting a brown adipose phenotype in mice. Diabetologia 55:183–193. https://doi.org/10.1007/s00125-011-2304-4
doi: 10.1007/s00125-011-2304-4 pubmed: 21927895
Bonala S, Lokireddy S, McFarlane C, Patnam S, Sharma M, Kambadur R (2014) Myostatin induces insulin resistance via Casitas B-lineage lymphoma b (Cblb)-mediated degradation of insulin receptor substrate 1 (IRS1) protein in response to high calorie diet intake. J Biol Chem 289:7654–7670. https://doi.org/10.1074/jbc.M113.529925
doi: 10.1074/jbc.M113.529925 pubmed: 24451368 pmcid: 3953277
Cleasby ME, Jarmin S, Eilers W et al (2014) Local overexpression of the myostatin propeptide increases glucose transporter expression and enhances skeletal muscle glucose disposal. Am J Physiol Endocrinol Metab 306:E814–E823. https://doi.org/10.1152/ajpendo.00586.2013
doi: 10.1152/ajpendo.00586.2013 pubmed: 24473441 pmcid: 3962614

Auteurs

Alexandra Efthymiadou (A)

Department of Pediatrics, Division of Endocrinology, Medical School, University of Patras, Patras, Rion 26504, Greece.

Ioannis-Anargyros Vasilakis (IA)

Department of Pediatrics, Medical School, University of Patras, Patras, Rion 26504, Greece.
First Department of Pediatrics, Division of Endocrinology, Diabetes and Metabolism, Medical School, National and Kapodistrian University of Athens, Aghia Sophia" Children's Hospital, Athens, Greece.

Aristeidis Giannakopoulos (A)

Department of Pediatrics, Division of Endocrinology, Medical School, University of Patras, Patras, Rion 26504, Greece.

Dionisios Chrysis (D)

Department of Pediatrics, Division of Endocrinology, Medical School, University of Patras, Patras, Rion 26504, Greece. dchrysis@upatras.gr.

Articles similaires

[Redispensing of expensive oral anticancer medicines: a practical application].

Lisanne N van Merendonk, Kübra Akgöl, Bastiaan Nuijen
1.00
Humans Antineoplastic Agents Administration, Oral Drug Costs Counterfeit Drugs

Smoking Cessation and Incident Cardiovascular Disease.

Jun Hwan Cho, Seung Yong Shin, Hoseob Kim et al.
1.00
Humans Male Smoking Cessation Cardiovascular Diseases Female
Humans United States Aged Cross-Sectional Studies Medicare Part C
1.00
Humans Yoga Low Back Pain Female Male

Classifications MeSH