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November 19, 2020BMC Genomics40 citationsOpen Access

Comparative analysis of the transcriptomes of EDL, psoas, and soleus muscles from mice

PHPabodha HettigeUTUzma TahirKNKiisa C. Nishikawa

Key Result

High-throughput RNA sequencing demonstrated that while EDL and psoas share fast-twitch characteristics, they exhibit unique expression patterns in genes coding for extracellular matrix and metabolism.

Structured PICO

P
Population
6 wild-type mice aged 32 to 54 days whose EDL, psoas, and soleus muscles were extracted for RNA sequencing.
E
Exposure
High throughput RNA sequencing
C
Comparator
Comparison among EDL, psoas, and soleus muscles
O
Outcome
Differential gene expression patternssurrogate

High throughput RNA sequencing reveals intricate molecular differences between skeletal muscles beyond traditional fast-twitch and slow-twitch classifications.

Limitations

  • Transcriptomic differences do not always correlate with protein dynamics inside a cell.
  • Small sample size determined by availability from another experimental study.

Abstract

BACKGROUND: Individual skeletal muscles have evolved to perform specific tasks based on their molecular composition. In general, muscle fibers are characterized as either fast-twitch or slow-twitch based on their myosin heavy chain isoform profiles. This approach made sense in the early days of muscle studies when SDS-PAGE was the primary tool for mapping fiber type. However, Next Generation Sequencing tools permit analysis of the entire muscle transcriptome in a single sample, which allows for more precise characterization of differences among fiber types, including distinguishing between different isoforms of specific proteins. We demonstrate the power of this approach by comparing the differential gene expression patterns of extensor digitorum longus (EDL), psoas, and soleus from mice using high throughput RNA sequencing. RESULTS: EDL and psoas are typically classified as fast-twitch muscles based on their myosin expression pattern, while soleus is considered a slow-twitch muscle. The majority of the transcriptomic variability aligns with the fast-twitch and slow-twitch characterization. However, psoas and EDL exhibit unique expression patterns associated with the genes coding for extracellular matrix, myofibril, transcription, translation, striated muscle adaptation, mitochondrion distribution, and metabolism. Furthermore, significant expression differences between psoas and EDL were observed in genes coding for myosin light chain, troponin, tropomyosin isoforms, and several genes encoding the constituents of the Z-disk. CONCLUSIONS: The observations highlight the intricate molecular nature of skeletal muscles and demonstrate the importance of utilizing transcriptomic information as a tool for skeletal muscle characterization.

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Cite This Study

Hettige et al. (2020) studied Healthy skeletal muscle (n=6). Muscle type (EDL, psoas, soleus) vs. Between muscle types was evaluated on Differentially expressed genes among EDL, psoas, and soleus muscles. High-throughput RNA sequencing demonstrated that while EDL and psoas share fast-twitch characteristics, they exhibit unique expression patterns in genes coding for extracellular matrix and metabolism.

synapsesocial.com/papers/6a6302e0383a97b843c1a923https://doi.org/10.1186/s12864-020-07225-2
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Fibre‐type specific expression of fast and slow essential myosin light chain mRNAs in trained human skeletal muscles1998 · 12 citations
  2. 2Calpain 3: a key regulator of the sarcomere?2006 · 131 citations
  3. 3An N-terminal fragment of titin coupled to green fluorescent protein localizes to the Z-bands in living muscle cells: overexpression leads to myofibril disassembly.1997 · 58 citations
  4. 4Tropomyosin 3 Increases Striated Muscle Isoform Diversity2000 · 72 citations
  5. 5Molecular and Physiological Effects of Overexpressing Striated Muscle β-Tropomyosin in the Adult Murine Heart1995 · 155 citations