Nanomaterial-induced mitochondrial biogenesis enhances intercellular mitochondrial transfer efficiency

J John Soukar (Interdisiplinary program in Genetics and Genomics, College of Agriculture and Life Sciences, Texas A&M University) K Kanwar Abhay Singh (Department of Biomedical Engineering, College of Engineering, Texas A&M University) A Ari Aviles (Interdisiplinary program in Genetics and Genomics, College of Agriculture and Life Sciences, Texas A&M University) S Sarah Hargett (Department of Biomedical Engineering, College of Engineering, Texas A&M University) H Harman Kaur (Department of Biochemistry and Biophysics, College of Agriculture and Life Sciences, Texas A&M University) S Samantha Foster (Interdisiplinary program in Genetics and Genomics, College of Agriculture and Life Sciences, Texas A&M University) S Shounak Roy (Department of Biomedical Engineering, College of Engineering, Texas A&M University) F Feng Zhao (Storagenergy Technologies Inc.) V Vishal M. Gohil (Interdisiplinary program in Genetics and Genomics, College of Agriculture and Life Sciences, Texas A&M University) I Irtisha Singh (Interdisiplinary program in Genetics and Genomics, College of Agriculture and Life Sciences, Texas A&M University) A Akhilesh K. Gaharwar (Interdisiplinary program in Genetics and Genomics, College of Agriculture and Life Sciences, Texas A&M University)

Abstract

Intercellular mitochondrial transfer, the spontaneous exchange of mitochondria between cells, is a recently described phenomenon crucial for cellular repair, regeneration, and disease management. Enhancing this natural process holds promise for developing novel therapies targeting diseases associated with mitochondrial dysfunction. Here, we introduce a nanomaterial-based approach employing molybdenum disulfide (MoS 2 ) nanoflowers with atomic-scale vacancies to stimulate mitochondrial biogenesis in cells to make them mitochondrial biofactories. Upon cellular uptake, these nanoflowers result in a two-fold increase in mitochondrial mass and enhancing mitochondrial transfer to recipient cells by several-fold. This enhanced efficiency of transfer significantly improves mitochondrial respiratory capacity and adenosine triphosphate production in recipient cells under physiological conditions. In cellular models of mitochondrial and cellular damage, MoS 2 enhanced mitochondrial transfer achieved remarkable restoration of cell function. This proof-of-concept study demonstrates that nanomaterial-boosted intercellular mitochondrial transfer can enhance cell survivability and function under diseased conditions, offering a promising strategy for treating mitochondrial dysfunction-related diseases.

Article Details

Volume / Issue Vol. 122, Issue 43
Published October 28, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (11)

J

John Soukar

Interdisiplinary program in Genetics and Genomics, College of Agriculture and Life Sciences, Texas A&M University

K

Kanwar Abhay Singh

Department of Biomedical Engineering, College of Engineering, Texas A&M University

A

Ari Aviles

Interdisiplinary program in Genetics and Genomics, College of Agriculture and Life Sciences, Texas A&M University

S

Sarah Hargett

Department of Biomedical Engineering, College of Engineering, Texas A&M University

H

Harman Kaur

Department of Biochemistry and Biophysics, College of Agriculture and Life Sciences, Texas A&M University

S

Samantha Foster

Interdisiplinary program in Genetics and Genomics, College of Agriculture and Life Sciences, Texas A&M University

S

Shounak Roy

Department of Biomedical Engineering, College of Engineering, Texas A&M University

F

Feng Zhao

Storagenergy Technologies Inc.

V

Vishal M. Gohil

Interdisiplinary program in Genetics and Genomics, College of Agriculture and Life Sciences, Texas A&M University

I

Irtisha Singh

Interdisiplinary program in Genetics and Genomics, College of Agriculture and Life Sciences, Texas A&M University

A

Akhilesh K. Gaharwar

Interdisiplinary program in Genetics and Genomics, College of Agriculture and Life Sciences, Texas A&M University