Use of organ transplant solution to preserve skeletal muscle for cellular and spatial transcriptomic analyses

Single-cell and spatial transcriptomic technologies have revolutionized human cell and tissue research. Success of these methods critically depends on the preservation of RNA integrity, cellular viability, and structure of the explanted tissues-features that are impacted by tissue storage conditions, and pose challenges in research settings, where tissues are often collected in the operating room and transported to distant laboratories. In this study, we evaluated the effectiveness of a clinically approved organ transplant solution (TS) for preserving skeletal muscle under refrigerated conditions. Using murine and human skeletal muscle tissues we found that compared to buffered saline, TS consistently maintained higher RNA quality, preserved tissue morphology, and supported successful primary cell culture and spatial transcriptomic analysis of murine and human muscle samples obtained from different surgical collection sites. These findings establish a foundation for the use of a standardized protocol for live muscle tissue preservation for reliable downstream transcriptomic analyses for multicenter research efforts.

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Publication Details

Journal
Scientific Reports
Published
2026-07-16
DOI
https://doi.org/10.1038/s41598-026-58534-7
Primary Topic
Muscle Physiology and Disorders
Type
article
Field-Weighted Citation Impact
0.00

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article

Use of organ transplant solution to preserve skeletal muscle for cellular and spatial transcriptomic analyses

Casie A. Genetti, Prech Uapinyoying, Pamela Barraza-Flores, Nikki M. McCormack et al.
Scientific Reports
Muscle Physiology and Disorders
article

Use of organ transplant solution to preserve skeletal muscle for cellular and spatial transcriptomic analyses

Casie A. Genetti, Prech Uapinyoying, Pamela Barraza-Flores, Nikki M. McCormack, Jordi Diaz-Manera, Sanda Alexandrescu, Emanuela Gussoni, Young Jae Moon, Gustavo Dziewczapolski, Benjamin D. Cosgrove, Surajit Bhattacharya, Aiping Zhang, Rachel Alvarez, Casey Swoboda, Douglas Milay, Angela N. Viaene, Steven A. Moore, Monkol Lek, Yi-Wen Chen, Andrew Jia, Won Lee, Carsten G. Bönnemann, Jessica L. Orton, Nhu Chau, Jyoti K. Jaiswal, Alan H. Beggs
article en

Abstract

Single-cell and spatial transcriptomic technologies have revolutionized human cell and tissue research. Success of these methods critically depends on the preservation of RNA integrity, cellular viability, and structure of the explanted tissues-features that are impacted by tissue storage conditions, and pose challenges in research settings, where tissues are often collected in the operating room and transported to distant laboratories. In this study, we evaluated the effectiveness of a clinically approved organ transplant solution (TS) for preserving skeletal muscle under refrigerated conditions. Using murine and human skeletal muscle tissues we found that compared to buffered saline, TS consistently maintained higher RNA quality, preserved tissue morphology, and supported successful primary cell culture and spatial transcriptomic analysis of murine and human muscle samples obtained from different surgical collection sites. These findings establish a foundation for the use of a standardized protocol for live muscle tissue preservation for reliable downstream transcriptomic analyses for multicenter research efforts.

Scientific Reports
University of Iowa (US), Cincinnati Children's Hospital Medical Center (US), Boston Children's Hospital (US), National Institutes of Health (US), Children's Hospital of Philadelphia (US), Children's National (US), Stimson Center (US), Harvard University (US), George Washington University (US), Cornell University (US), Yale University (US), National Institute of Neurological Disorders and Stroke (US), Jeonbuk National University Hospital (KR), Washington University Medical Center (US), Dana-Farber/Boston Children's Cancer and Blood Disorders Center (US), Jeonbuk National University (KR), Newcastle University (GB)
Chan Zuckerberg Initiative, National Institute of Child Health and Human Development
Zero hunger
Openalex Percentile: Top 15%
Muscle Physiology and Disorders
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