Changes in skeletal muscle in diabetes mellitus
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[1] S. Martínez-Hervás,et al. Low Muscle Mass Is Associated with Poorer Glycemic Control and Higher Oxidative Stress in Older Patients with Type 2 Diabetes , 2023, Nutrients.
[2] T. Nikawa,et al. Polyphenols and Their Effects on Muscle Atrophy and Muscle Health , 2021, Molecules.
[3] D. Kiel,et al. Putative Cut‐Points in Sarcopenia Components and Incident Adverse Health Outcomes: An SDOC Analysis , 2020, Journal of the American Geriatrics Society.
[4] W. Dempke,et al. Interleukin-6: A Masterplayer in the Cytokine Network , 2020, Oncology.
[5] Jianwei Zhu,et al. PQQ ameliorates skeletal muscle atrophy, mitophagy and fiber type transition induced by denervation via inhibition of the inflammatory signaling pathways. , 2019, Annals of translational medicine.
[6] Michael Halim,et al. The effects of inflammation, aging and oxidative stress on the pathogenesis of diabetes mellitus (type 2 diabetes). , 2019, Diabetes & metabolic syndrome.
[7] Xiaoming Yang,et al. The role of inflammatory factors in skeletal muscle injury , 2018 .
[8] T. Kawaguchi,et al. Advanced Glycation End Product Accumulation Is Associated With Low Skeletal Muscle Mass, Weak Muscle Strength, and Reduced Bone Density: The Nagahama Study. , 2018, The journals of gerontology. Series A, Biological sciences and medical sciences.
[9] René Rizzoli,et al. Sarcopenia: revised European consensus on definition and diagnosis , 2018, Age and ageing.
[10] M. Szalecki,et al. Skeletal Status, Body Composition, and Glycaemic Control in Adolescents with Type 1 Diabetes Mellitus , 2018, Journal of diabetes research.
[11] A. Scherzinger,et al. Youth With Type 1 Diabetes Have Adipose, Hepatic, and Peripheral Insulin Resistance , 2018, The Journal of clinical endocrinology and metabolism.
[12] A. Musarò,et al. The physiopathologic interplay between stem cells and tissue niche in muscle regeneration and the role of IL-6 on muscle homeostasis and diseases. , 2018, Cytokine & growth factor reviews.
[13] M. Tarnopolsky,et al. Altered mitochondrial bioenergetics and ultrastructure in the skeletal muscle of young adults with type 1 diabetes , 2018, Diabetologia.
[14] Vahideh Hassan-Zadeh,et al. IL-6 signalling pathways and the development of type 2 diabetes , 2018, Inflammopharmacology.
[15] M. Akash,et al. Tumor Necrosis Factor‐Alpha: Role in Development of Insulin Resistance and Pathogenesis of Type 2 Diabetes Mellitus , 2018, Journal of cellular biochemistry.
[16] D. Schatz,et al. Growth hormone and insulin-like growth factor-I axis in type 1 diabetes. , 2017, Growth hormone & IGF research : official journal of the Growth Hormone Research Society and the International IGF Research Society.
[17] G. Freckmann,et al. ISO 15197: 2013 Evaluation of a Blood Glucose Monitoring System’s Measurement Accuracy , 2017, Journal of diabetes science and technology.
[18] Shao-Cong Sun. The non-canonical NF-κB pathway in immunity and inflammation , 2017, Nature Reviews Immunology.
[19] I. Bazzucchi,et al. The impact of type 1 diabetes and diabetic polyneuropathy on muscle strength and fatigability , 2017, Acta Diabetologica.
[20] M. Lauterbach,et al. Macrophage function in obesity-induced inflammation and insulin resistance , 2017, Pflügers Archiv - European Journal of Physiology.
[21] Scott Pardo,et al. Accuracy and User Performance Evaluation of a New, Wireless-enabled Blood Glucose Monitoring System That Links to a Smart Mobile Device , 2017, Journal of diabetes science and technology.
[22] M. Maddocks,et al. Sarcopenia and frailty in chronic respiratory disease , 2017, Chronic respiratory disease.
[23] M. Grounds,et al. Differential thiol oxidation of the signaling proteins Akt, PTEN or PP2A determines whether Akt phosphorylation is enhanced or inhibited by oxidative stress in C2C12 myotubes derived from skeletal muscle. , 2015, The international journal of biochemistry & cell biology.
[24] J. Regensteiner,et al. Delayed Skeletal Muscle Mitochondrial ADP Recovery in Youth With Type 1 Diabetes Relates to Muscle Insulin Resistance , 2014, Diabetes.
[25] Erik A Otto,et al. Evaluation of the Utility of a Glycemic Pattern Identification System , 2014, Journal of diabetes science and technology.
[26] J. Jakobsen,et al. Striated muscle fiber size, composition, and capillary density in diabetes in relation to neuropathy and muscle strength 糖尿病患者的横纹肌纤维尺寸、成份以及毛细血管密度与神经病变以及肌肉强度相关 , 2014, Journal of diabetes.
[27] T. Hawke,et al. Diabetic myopathy: impact of diabetes mellitus on skeletal muscle progenitor cells , 2013, Front. Physiol..
[28] L. Ferrucci,et al. Quadriceps Strength, Quadriceps Power, and Gait Speed in Older U.S. Adults with Diabetes Mellitus: Results from the National Health and Nutrition Examination Survey, 1999–2002 , 2013, Journal of the American Geriatrics Society.
[29] L. Barkai,et al. Reduced physical fitness in children and adolescents with type 1 diabetes , 2012, Pediatric diabetes.
[30] T. Hawke,et al. Effects of type 1 diabetes mellitus on skeletal muscle: clinical observations and physiological mechanisms , 2011, Pediatric diabetes.
[31] M. Wolzt,et al. Impaired insulin stimulation of muscular ATP production in patients with type 1 diabetes , 2011, Journal of internal medicine.
[32] W. Polonsky,et al. Structured Self-Monitoring of Blood Glucose Significantly Reduces A1C Levels in Poorly Controlled, Noninsulin-Treated Type 2 Diabetes , 2011, Diabetes Care.
[33] J. Regensteiner,et al. Insulin resistance in adolescents with type 1 diabetes and its relationship to cardiovascular function. , 2010, The Journal of clinical endocrinology and metabolism.
[34] Randall W. Bryner,et al. Satellite cell proliferation is reduced in muscles of obese Zucker rats but restored with loading. , 2008, American journal of physiology. Cell physiology.
[35] G. Shulman,et al. The role of intramyocellular lipids during hypoglycemia in patients with intensively treated type 1 diabetes. , 2005, The Journal of clinical endocrinology and metabolism.
[36] M. Danna,et al. Insulin resistance, intramyocellular lipid content, and plasma adiponectin in patients with type 1 diabetes. , 2003, American journal of physiology. Endocrinology and metabolism.
[37] Gregory J. Crowther,et al. Altered energetic properties in skeletal muscle of men with well-controlled insulin-dependent (type 1) diabetes. , 2003, American journal of physiology. Endocrinology and metabolism.
[38] J. Henriksson,et al. Influence of Physical Training on Formation of Muscle Capillaries in Type I Diabetes , 1984, Diabetes.
[39] Z. Hlávka,et al. Muscle functions and bone strength are impaired in adolescents with type 1 diabetes. , 2018, Bone.
[40] M. Rewers,et al. The importance of palmitoleic acid to adipocyte insulin resistance and whole-body insulin sensitivity in type 1 diabetes. , 2013, The Journal of clinical endocrinology and metabolism.
[41] F. Toledo,et al. Deficiency of electron transport chain in human skeletal muscle mitochondria in type 2 diabetes mellitus and obesity. , 2010, American journal of physiology. Endocrinology and metabolism.