Next Article in Journal
Tumor Immunogenic Cell Death as a Mediator of Intratumor CD8 T-Cell Recruitment
Next Article in Special Issue
Impact of Neurons on Patient-Derived Cardiomyocytes Using Organ-On-A-Chip and iPSC Biotechnologies
Previous Article in Journal
Mutation of Tyrosine Sites in the Human Alpha-Synuclein Gene Induces Neurotoxicity in Transgenic Mice with Soluble Alpha-Synuclein Oligomer Formation
Previous Article in Special Issue
The Impaired Neurodevelopment of Human Neural Rosettes in HSV-1-Infected Early Brain Organoids
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Article

Hyperglycemia Negatively Affects IPSC-Derived Myoblast Proliferation and Skeletal Muscle Regeneration and Function

1
NanoScience Technology Center, University of Central Florida, 12424 Research Parkway, Suite 400, Orlando, FL 32826, USA
2
Burnett School of Biomedical Sciences, College of Medicine, University of Central Florida, Orlando, FL 32816, USA
*
Authors to whom correspondence should be addressed.
Cells 2022, 11(22), 3674; https://doi.org/10.3390/cells11223674
Submission received: 9 September 2022 / Revised: 17 October 2022 / Accepted: 28 October 2022 / Published: 18 November 2022

Abstract

Diabetic myopathy is a co-morbidity diagnosed in most diabetes mellitus patients, yet its pathogenesis is still understudied, which hinders the development of effective therapies. This project aimed to investigate the effect of hyperglycemia on human myoblast physiology, devoid of other complicating factors, by utilizing human myoblasts derived from induced pluripotent stem cells (iPSCs), in a defined in vitro system. IPSC-derived myoblasts were expanded under three glucose conditions: low (5 mM), medium (17.5 mM) or high (25 mM). While hyperglycemic myoblasts demonstrated upregulation of Glut4 relative to the euglycemic control, myoblast proliferation demonstrated a glucose dose-dependent impedance. Further cellular analysis revealed a retarded cell cycle progression trapped at the S phase and G2/M phase and an impaired mitochondrial function in hyperglycemic myoblasts. Terminal differentiation of these hyperglycemic myoblasts resulted in significantly hypertrophic and highly branched myotubes with disturbed myosin heavy chain arrangement. Lastly, functional assessment of these myofibers derived from hyperglycemic myoblasts demonstrated comparatively increased fatigability. Collectively, the hyperglycemic myoblasts demonstrated deficient muscle regeneration capability and functionality, which falls in line with the sarcopenia symptoms observed in diabetic myopathy patients. This human-based iPSC-derived skeletal muscle hyperglycemic model provides a valuable platform for mechanistic investigation of diabetic myopathy and therapeutic development.
Keywords: hyperglycemia; skeletal muscle; myoblast; iPSC; in vitro hyperglycemia; skeletal muscle; myoblast; iPSC; in vitro

Share and Cite

MDPI and ACS Style

Badu-Mensah, A.; Valinski, P.; Parsaud, H.; Hickman, J.J.; Guo, X. Hyperglycemia Negatively Affects IPSC-Derived Myoblast Proliferation and Skeletal Muscle Regeneration and Function. Cells 2022, 11, 3674. https://doi.org/10.3390/cells11223674

AMA Style

Badu-Mensah A, Valinski P, Parsaud H, Hickman JJ, Guo X. Hyperglycemia Negatively Affects IPSC-Derived Myoblast Proliferation and Skeletal Muscle Regeneration and Function. Cells. 2022; 11(22):3674. https://doi.org/10.3390/cells11223674

Chicago/Turabian Style

Badu-Mensah, Agnes, Paola Valinski, Hemant Parsaud, James J. Hickman, and Xiufang Guo. 2022. "Hyperglycemia Negatively Affects IPSC-Derived Myoblast Proliferation and Skeletal Muscle Regeneration and Function" Cells 11, no. 22: 3674. https://doi.org/10.3390/cells11223674

APA Style

Badu-Mensah, A., Valinski, P., Parsaud, H., Hickman, J. J., & Guo, X. (2022). Hyperglycemia Negatively Affects IPSC-Derived Myoblast Proliferation and Skeletal Muscle Regeneration and Function. Cells, 11(22), 3674. https://doi.org/10.3390/cells11223674

Note that from the first issue of 2016, this journal uses article numbers instead of page numbers. See further details here.

Article Metrics

Back to TopTop