PEER-REVIEWED PUBLICATION

2022

Understanding Brain-Skeletal Muscle Crosstalk Impacting Metabolism and Movement

Jena BP, Larsson L, et al.

Discoveries

Wayne State University, Viron Molecular Medicine Institute, Karolinska Institutet, Beth Israel Deaconess Medical Center (Harvard Medical School)

RESEARCH SUMMARY
This perspective proposes a new interdisciplinary research direction—“Science and Engineering of Metabolism and Movement”—focused on systems-level mechanisms by which the brain and skeletal muscle coordinate metabolic regulation and movement. The authors outline a multi-focus program combining in vivo noninvasive neuroimaging (MEG,PET,fMRI) with in vitro microphysiological models (human primary neuron culture and muscle-on-a-chip) to interrogate bidirectional brain–muscle communication, including exercise-driven signaling (e.g., exosome-mediated effects on neuronal metabolism) and the coupled roles of mitochondria (ATP production) and myosin (mechanical work). The article emphasizes integrating advanced imaging (including expansion microscopy), biochemical and omics profiling (proteomics,lipidomics,miRNA), and computational systems biology (genome-scale metabolic models and flux balance analysis) to reconstruct brain and muscle metabolic states under sedentary versus mechanically exercised conditions and to identify mechanistic drivers of myopathy, neurodegeneration, and exercise adaptations.

CELLSCALE INSTRUMENT USED

MechanoCulture FX

The article describes and illustrates a CellScale-based 3D stretchable “muscle-on-a-chip” microphysiological platform consisting of a single 16-well silicone plate (each well 8 mm x 8 mm) with a 0.25 mm transparent bottom membrane (CellScale) suitable for placement inside a standard incubator and remote control. The setup enables uniaxial stretching of cultured human skeletal muscle cells on micropatterned stretchable membranes (10 µm grooves) with real-time imaging capability, intended to model exercise (stretched) versus inactivity (sedentary) states for mechanobiology and downstream analyses such as exosome collection and metabolic/omics profiling.
AUTHORS

Bhanu P. Jena, Lars Larsson, Domenico L. Gatti, Ionita Ghiran, Won Jin Cho.

PUBLICATION DETAILS
JOURNAL

Discoveries

YEAR

2022

INSTITUTIONS

Wayne State University, Viron Molecular Medicine Institute, Karolinska Institutet, Beth Israel Deaconess Medical Center (Harvard Medical School)

COUNTRIES

Sweden, United States

INSTRUMENT USED

MechanoCulture FX

TESTING METHODS

Hydrated and Temperature Controlled TestingTensile Testing

RESEARCH APPLICATIONS

MechanotransductionOrgan-On-A-Chip SystemsSkeletal Muscle & Volumetric Muscle Loss

Related Publications:

Instrument Used:
Year:
Testing Method:
Research Application:
Country:

Inflammation drives TGFβ1 activation via the αvβ6 integrin-mechanotransduction pathway in human skin

Jiang X, Sellami S, et al.

iScience

MechanoCulture FX

Tensile Testing

MechanotransductionSkin and Wound Healing Biomechanics

2026

Identification of rare missense variants reducing cathepsin O secretion in families with intracranial aneurysm

Fréneau M, Blanchet R, et al.

Cardiovascular Research

MechanoCulture FX

Hydrated and Temperature Controlled TestingTensile Testing

Fibrosis & Tissue RemodelingMechanotransductionVascular Tissue Engineering & Mechanics

2026

The Nemp1–Nesprin complex mediates cellular responses to matrix mechanics

Ganguly A, Zmuda H, et al.

PNAS

MechanoCulture FX

Tensile Testing

MechanotransductionPelvic Floor and Gynecological Biomechanics

2026

Contact Sales

Product of Interest: