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1.
Anim Biotechnol ; 35(1): 2345238, 2024 Nov.
Article En | MEDLINE | ID: mdl-38775564

Tropomyosin 3 (TPM3) plays a significant role as a regulatory protein in muscle contraction, affecting the growth and development of skeletal muscles. Despite its importance, limited research has been conducted to investigate the influence of TPM3 on bovine skeletal muscle development. Therefore, this study revealed the role of TPM3 in bovine myoblast growth and development. This research involved conducting a thorough examination of the Qinchuan cattle TPM3 gene using bioinformatics tools to examine its sequence and structural characteristics. Furthermore, TPM3 expression was evaluated in various bovine tissues and cells using quantitative real-time polymerase chain reaction (qRT-PCR). The results showed that the coding region of TPM3 spans 855 bp, with the 161st base being the T base, encoding a protein with 284 amino acids and 19 phosphorylation sites. This protein demonstrated high conservation across species while displaying a predominant α-helix secondary structure despite being an unstable acidic protein. Notably, a noticeable increase in TPM3 expression was observed in the longissimus dorsi muscle and myocardium of calves and adult cattle. Expression patterns varied during different stages of myoblast differentiation. Functional studies that involved interference with TPM3 in Qinchuan cattle myoblasts revealed a very significantly decrease in S-phase cell numbers and EdU-positive staining (P < 0.01), and disrupted myotube morphology. Moreover, interference with TPM3 resulted in significantly (P < 0.05) or highly significantly (P < 0.01) decreased mRNA and protein levels of key proliferation and differentiation markers, indicating its role in the modulation of myoblast behavior. These findings suggest that TPM3 plays an essential role in bovine skeletal muscle growth by influencing myoblast proliferation and differentiation. This study provides a foundation for further exploration into the mechanisms underlying TPM3-mediated regulation of bovine muscle development and provides valuable insights that could guide future research directions as well as potential applications for livestock breeding and addressing muscle-related disorders.


Cell Differentiation , Cell Proliferation , Cloning, Molecular , Myoblasts , Tropomyosin , Animals , Cattle/genetics , Tropomyosin/genetics , Tropomyosin/metabolism , Tropomyosin/chemistry , Cell Differentiation/genetics , Myoblasts/metabolism , Myoblasts/cytology , Muscle, Skeletal , Amino Acid Sequence , Muscle Development/genetics
2.
Commun Biol ; 7(1): 518, 2024 May 02.
Article En | MEDLINE | ID: mdl-38698103

Myoblast proliferation and differentiation are essential for skeletal muscle development. In this study, we generated the expression profiles of mRNAs, long noncoding RNAs (lncRNAs), and microRNAs (miRNAs) in different developmental stages of chicken primary myoblasts (CPMs) using RNA sequencing (RNA-seq) technology. The dual luciferase reporter system was performed using chicken embryonic fibroblast cells (DF-1), and functional studies quantitative real-time polymerase chain reaction (qPCR), cell counting kit-8 (CCK-8), 5-Ethynyl-2'-deoxyuridine (EdU), flow cytometry cycle, RNA fluorescence in situ hybridization (RNA-FISH), immunofluorescence, and western blotting assay. Our research demonstrated that miR-301a-5p had a targeted binding ability to lncMDP1 and ChaC glutathione-specific gamma-glutamylcyclotransferase 1 (CHAC1). The results revealed that lncMDP1 regulated the proliferation and differentiation of myoblasts via regulating the miR-301a-5p/CHAC1 axis, and CHAC1 promotes muscle regeneration. This study fulfilled the molecular regulatory network of skeletal muscle development and providing an important theoretical reference for the future improvement of chicken meat performance and meat quality.


Chickens , Gene Expression Profiling , MicroRNAs , Muscle Development , RNA, Long Noncoding , Animals , MicroRNAs/genetics , MicroRNAs/metabolism , Muscle Development/genetics , Chickens/genetics , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism , Cell Differentiation/genetics , Cell Proliferation , Myoblasts/metabolism , Myoblasts/cytology , Chick Embryo
3.
Proc Natl Acad Sci U S A ; 121(21): e2317495121, 2024 May 21.
Article En | MEDLINE | ID: mdl-38753506

Myogenic regeneration relies on the proliferation and differentiation of satellite cells. TECRL (trans-2,3-enoyl-CoA reductase like) is an endoplasmic reticulum protein only expressed in cardiac and skeletal muscle. However, its role in myogenesis remains unknown. We show that TECRL expression is increased in response to injury. Satellite cell-specific deletion of TECRL enhances muscle repair by increasing the expression of EGR2 through the activation of the ERK1/2 signaling pathway, which in turn promotes the expression of PAX7. We further show that TECRL deletion led to the upregulation of the histone acetyltransferase general control nonderepressible 5, which enhances the transcription of EGR2 through acetylation. Importantly, we showed that AAV9-mediated TECRL silencing improved muscle repair in mice. These findings shed light on myogenic regeneration and muscle repair.


Early Growth Response Protein 2 , Muscle Development , Muscle, Skeletal , Regeneration , Animals , Mice , Muscle, Skeletal/metabolism , Early Growth Response Protein 2/metabolism , Early Growth Response Protein 2/genetics , Muscle Development/genetics , Regeneration/genetics , Up-Regulation , Satellite Cells, Skeletal Muscle/metabolism , PAX7 Transcription Factor/metabolism , PAX7 Transcription Factor/genetics , MAP Kinase Signaling System , Mice, Knockout , Cell Differentiation
4.
Development ; 151(9)2024 May 01.
Article En | MEDLINE | ID: mdl-38727565

Proper embryonic development depends on the timely progression of a genetic program. One of the key mechanisms for achieving precise control of developmental timing is to use gene expression oscillations. In this Review, we examine how gene expression oscillations encode temporal information during vertebrate embryonic development by discussing the gene expression oscillations occurring during somitogenesis, neurogenesis, myogenesis and pancreas development. These oscillations play important but varied physiological functions in different contexts. Oscillations control the period of somite formation during somitogenesis, whereas they regulate the proliferation-to-differentiation switch of stem cells and progenitor cells during neurogenesis, myogenesis and pancreas development. We describe the similarities and differences of the expression pattern in space (i.e. whether oscillations are synchronous or asynchronous across neighboring cells) and in time (i.e. different time scales) of mammalian Hes/zebrafish Her genes and their targets in different tissues. We further summarize experimental evidence for the functional role of their oscillations. Finally, we discuss the outstanding questions for future research.


Embryonic Development , Gene Expression Regulation, Developmental , Somites , Animals , Embryonic Development/genetics , Humans , Somites/metabolism , Somites/embryology , Muscle Development/genetics , Neurogenesis/genetics , Neurogenesis/physiology , Pancreas/embryology , Pancreas/metabolism , Cell Differentiation/genetics
5.
Int J Mol Sci ; 25(9)2024 Apr 28.
Article En | MEDLINE | ID: mdl-38732031

Skeletal muscle myogenesis hinges on gene regulation, meticulously orchestrated by molecular mechanisms. While the roles of transcription factors and non-coding RNAs in myogenesis are widely known, the contribution of RNA-binding proteins (RBPs) has remained unclear until now. Therefore, to investigate the functions of post-transcriptional regulators in myogenesis and uncover new functional RBPs regulating myogenesis, we employed CRISPR high-throughput RBP-KO (RBP-wide knockout) library screening. Through this approach, we successfully identified Eef1a1 as a novel regulatory factor in myogenesis. Using CRISPR knockout (CRISPRko) and CRISPR interference (CRISPRi) technologies, we successfully established cellular models for both CRISPRko and CRISPRi. Our findings demonstrated that Eef1a1 plays a crucial role in promoting proliferation in C2C12 myoblasts. Through siRNA inhibition and overexpression methods, we further elucidated the involvement of Eef1a1 in promoting proliferation and suppressing differentiation processes. RIP (RNA immunoprecipitation), miRNA pull-down, and Dual-luciferase reporter assays confirmed that miR-133a-3p targets Eef1a1. Co-transfection experiments indicated that miR-133a-3p can rescue the effect of Eef1a1 on C2C12 myoblasts. In summary, our study utilized CRISPR library high-throughput screening to unveil a novel RBP, Eef1a1, involved in regulating myogenesis. Eef1a1 promotes the proliferation of myoblasts while inhibiting the differentiation process. Additionally, it acts as an antagonist to miR-133a-3p, thus modulating the process of myogenesis.


Cell Differentiation , Cell Proliferation , Muscle Development , Myoblasts , Peptide Elongation Factor 1 , Muscle Development/genetics , Peptide Elongation Factor 1/genetics , Peptide Elongation Factor 1/metabolism , Animals , Mice , Cell Proliferation/genetics , Cell Differentiation/genetics , Myoblasts/metabolism , Myoblasts/cytology , CRISPR-Cas Systems , Cell Line , MicroRNAs/genetics , MicroRNAs/metabolism , Humans , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/genetics
6.
Int J Mol Sci ; 25(9)2024 Apr 29.
Article En | MEDLINE | ID: mdl-38732090

Meox1 is a critical transcription factor that plays a pivotal role in embryogenesis and muscle development. It has been established as a marker gene for growth-specific muscle stem cells in zebrafish. In this study, we identified the SsMeox1 gene in a large teleost fish, Sebastes schlegelii. Through in situ hybridization and histological analysis, we discovered that SsMeox1 can be employed as a specific marker of growth-specific muscle stem cells, which originate from the somite stage and are primarily situated in the external cell layer (ECL) and myosepta, with a minor population distributed among muscle fibers. The knockdown of SsMeox1 resulted in a significant increase in Ccnb1 expression, subsequently promoting cell cycle progression and potentially accelerating the depletion of the stem cell pool, which ultimately led to significant growth retardation. These findings suggest that SsMeox1 arrests the cell cycle of growth-specific muscle stem cells in the G2 phase by suppressing Ccnb1 expression, which is essential for maintaining the stability of the growth-specific muscle stem cell pool. Our study provides significant insights into the molecular mechanisms underlying the indeterminate growth of large teleosts.


Muscle Development , Animals , Muscle Development/genetics , Cyclin B1/metabolism , Cyclin B1/genetics , Gene Expression Regulation, Developmental , Fish Proteins/genetics , Fish Proteins/metabolism , Transcription Factors/metabolism , Transcription Factors/genetics , Stem Cells/metabolism , Stem Cells/cytology , Cell Cycle/genetics , Homeodomain Proteins/genetics , Homeodomain Proteins/metabolism
7.
PLoS One ; 19(5): e0301690, 2024.
Article En | MEDLINE | ID: mdl-38701072

Myogenesis is regulated mainly by transcription factors known as Myogenic Regulatory Factors (MRFs), and the transcription is affected by epigenetic modifications. However, the epigenetic regulation of myogenesis is poorly understood. Here, we focused on the epigenomic modification enzyme, PHF2, which demethylates histone 3 lysine 9 dimethyl (H3K9me2) during myogenesis. Phf2 mRNA was expressed during myogenesis, and PHF2 was localized in the nuclei of myoblasts and myotubes. We generated Phf2 knockout C2C12 myoblasts using the CRISPR/Cas9 system and analyzed global transcriptional changes via RNA-sequencing. Phf2 knockout (KO) cells 2 d post differentiation were subjected to RNA sequencing. Gene ontology (GO) analysis revealed that Phf2 KO impaired the expression of the genes related to skeletal muscle fiber formation and muscle cell development. The expression levels of sarcomeric genes such as Myhs and Mybpc2 were severely reduced in Phf2 KO cells at 7 d post differentiation, and H3K9me2 modification of Mybpc2, Mef2c and Myh7 was increased in Phf2 KO cells at 4 d post differentiation. These findings suggest that PHF2 regulates sarcomeric gene expression via epigenetic modification.


Muscle Development , Sarcomeres , Animals , Mice , Cell Differentiation/genetics , Cell Line , Epigenesis, Genetic , Gene Knockout Techniques , Histone Demethylases/metabolism , Histone Demethylases/genetics , Histones/metabolism , MEF2 Transcription Factors/genetics , MEF2 Transcription Factors/metabolism , Muscle Development/genetics , Muscle Fibers, Skeletal/metabolism , Muscle Fibers, Skeletal/cytology , Myoblasts/metabolism , Myoblasts/cytology , Myosin Heavy Chains/genetics , Myosin Heavy Chains/metabolism , Sarcomeres/metabolism , Transcription Factors/metabolism , Transcription Factors/genetics , Transcription, Genetic
8.
Sci Rep ; 14(1): 10931, 2024 05 13.
Article En | MEDLINE | ID: mdl-38740842

Biomaterial scaffolds play a pivotal role in the advancement of cultured meat technology, facilitating essential processes like cell attachment, growth, specialization, and alignment. Currently, there exists limited knowledge concerning the creation of consumable scaffolds tailored for cultured meat applications. This investigation aimed to produce edible scaffolds featuring both smooth and patterned surfaces, utilizing biomaterials such as salmon gelatin, alginate, agarose and glycerol, pertinent to cultured meat and adhering to food safety protocols. The primary objective of this research was to uncover variations in transcriptomes profiles between flat and microstructured edible scaffolds fabricated from marine-derived biopolymers, leveraging high-throughput sequencing techniques. Expression analysis revealed noteworthy disparities in transcriptome profiles when comparing the flat and microstructured scaffold configurations against a control condition. Employing gene functional enrichment analysis for the microstructured versus flat scaffold conditions yielded substantial enrichment ratios, highlighting pertinent gene modules linked to the development of skeletal muscle. Notable functional aspects included filament sliding, muscle contraction, and the organization of sarcomeres. By shedding light on these intricate processes, this study offers insights into the fundamental mechanisms underpinning the generation of muscle-specific cultured meat.


Cell Differentiation , Meat , Tissue Scaffolds , Transcriptome , Tissue Scaffolds/chemistry , Animals , Biopolymers , Muscle Development/genetics , Alginates/chemistry , Gene Expression Profiling , Sepharose/chemistry , Biocompatible Materials/chemistry , Gelatin/chemistry , Muscle Cells/metabolism , Salmon , In Vitro Meat
9.
BMC Genomics ; 25(1): 325, 2024 Apr 01.
Article En | MEDLINE | ID: mdl-38561670

BACKGROUND: Non-coding RNA is a key epigenetic regulation factor during skeletal muscle development and postnatal growth, and miR-542-3p was reported to be conserved and highly expressed in the skeletal muscle among different species. However, its exact functions in the proliferation of muscle stem cells and myogenesis remain to be determined. METHODS: Transfection of proliferative and differentiated C2C12 cells used miR-542-3p mimic and inhibitor. RT-qPCR, EdU staining, immunofluorescence staining, cell counting kit 8 (CCK-8), and Western blot were used to evaluate the proliferation and myogenic differentiation caused by miR-542-3p. The dual luciferase reporter analysis and rescued experiment of the target gene were used to reveal the molecular mechanism. RESULTS: The data shows overexpression of miR-542-3p downregulation of mRNA and protein levels of proliferation marker genes, reduction of EdU+ cells, and cellular vitality. Additionally, knocking it down promoted the aforementioned phenotypes. For differentiation, the miR-542-3p gain-of-function reduced both mRNA and protein levels of myogenic genes, including MYOG, MYOD1, et al. Furthermore, immunofluorescence staining immunized by MYHC antibody showed that the myotube number, fluorescence intensity, differentiation index, and myotube fusion index all decreased in the miR-542-3p mimic group, compared with the control group. Conversely, these phenotypes exhibited an increased trend in the miR-542-3p inhibitor group. Mechanistically, phosphatase and tensin homolog (Pten) was identified as the bona fide target gene of miR-542-3p by dual luciferase reporter gene assay, si-Pten combined with miR-542-3p inhibitor treatments totally rescued the promotion of proliferation by loss-function of miR-542-3p. CONCLUSIONS: This study indicates that miR-542-3p inhibits the proliferation and differentiation of myoblast and Pten is a dependent target gene of miR-542-3p in myoblast proliferation, but not in differentiation.


MicroRNAs , MicroRNAs/genetics , MicroRNAs/metabolism , Epigenesis, Genetic , Cell Proliferation/genetics , Cell Differentiation/genetics , RNA, Messenger/metabolism , Muscle Development/genetics , Myoblasts , Luciferases/genetics , Luciferases/metabolism
10.
Epigenetics ; 19(1): 2341578, 2024 Dec.
Article En | MEDLINE | ID: mdl-38615330

Long non-coding RNAs (lncRNAs) have been shown to be involved in the regulation of skeletal muscle development through multiple mechanisms. The present study revealed that the lncRNA SOX6 AU (SRY-box transcription factor 6 antisense upstream) is reverse transcribed from upstream of the bovine sex-determining region Y (SRY)-related high-mobility-group box 6 (SOX6) gene. SOX6 AU was significantly differentially expressed in muscle tissue among different developmental stages in Xianan cattle. Subsequently, knockdown and overexpression experiments discovered that SOX6 AU promoted primary skeletal muscle cells proliferation, apoptosis, and differentiation in bovine. The overexpression of SOX6 AU in bovine primary skeletal muscle cells resulted in 483 differentially expressed genes (DEGs), including 224 upregulated DEGs and 259 downregulated DEGs. GO functional annotation analysis showed that muscle development-related biological processes such as muscle structure development and muscle cell proliferation were significantly enriched. KEGG pathway analysis revealed that the PI3K/AKT and MAPK signaling pathways were important pathways for DEG enrichment. Notably, we found that SOX6 AU inhibited the mRNA and protein expression levels of the SOX6 gene. Moreover, knockdown of the SOX6 gene promoted the proliferation and apoptosis of bovine primary skeletal muscle cells. Finally, we showed that SOX6 AU promoted the proliferation and apoptosis of bovine primary skeletal muscle cells by cis-modulation of SOX6 in cattle. This work illustrates our discovery of the molecular mechanisms underlying the regulation of SOX6 AU in the development of beef.


Phosphatidylinositol 3-Kinases , RNA, Long Noncoding , Cattle , Animals , Phosphatidylinositol 3-Kinases/genetics , DNA Methylation , Muscle Development/genetics , Apoptosis , Cell Differentiation
11.
Sci Rep ; 14(1): 9396, 2024 04 24.
Article En | MEDLINE | ID: mdl-38658615

In a previous report, we demonstrated that Cbx1, PurB and Sp3 inhibited cardiac muscle differentiation by increasing nucleosome density around cardiac muscle gene promoters. Since cardiac and skeletal muscle express many of the same proteins, we asked if Cbx1, PurB and Sp3 similarly regulated skeletal muscle differentiation. In a C2C12 model of skeletal muscle differentiation, Cbx1 and PurB knockdown increased myotube formation. In contrast, Sp3 knockdown inhibited myotube formation, suggesting that Sp3 played opposing roles in cardiac muscle and skeletal muscle differentiation. Consistent with this finding, Sp3 knockdown also inhibited various muscle-specific genes. The Cbx1, PurB and Sp3 proteins are believed to influence gene-expression in part by altering nucleosome position. Importantly, we developed a statistical approach to determine if changes in nucleosome positioning were significant and applied it to understanding the architecture of muscle-specific genes. Through this novel statistical approach, we found that during myogenic differentiation, skeletal muscle-specific genes undergo a set of unique nucleosome changes which differ significantly from those shown in commonly expressed muscle genes. While Sp3 binding was associated with nucleosome loss, there appeared no correlation with the aforementioned nucleosome changes. In summary, we have identified a novel role for Sp3 in skeletal muscle differentiation and through the application of quantifiable MNase-seq have discovered unique fingerprints of nucleosome changes for various classes of muscle genes during myogenic differentiation.


Cell Differentiation , Muscle Development , Muscle, Skeletal , Nucleosomes , Promoter Regions, Genetic , Nucleosomes/metabolism , Nucleosomes/genetics , Animals , Cell Differentiation/genetics , Mice , Muscle, Skeletal/metabolism , Muscle Development/genetics , Cell Line , Sp3 Transcription Factor/metabolism , Sp3 Transcription Factor/genetics , Muscle Fibers, Skeletal/metabolism
12.
Curr Top Dev Biol ; 158: 407-431, 2024.
Article En | MEDLINE | ID: mdl-38670714

Skeletal muscle stem cells (MuSCs), also known as satellite cells, are essential for muscle growth and injury induced regeneration. In healthy adult muscle, MuSCs remain in a quiescent state located in a specialized niche beneath the basal lamina. Upon injury, these dormant MuSCs can quickly activate to re-enter the cell cycle and differentiate into new myofibers, while a subset undergoes self-renewal and returns to quiescence to restore the stem cell pool. The myogenic lineage progression is intricately controlled by complex intrinsic and extrinsic cues and coupled with dynamic transcriptional programs. In transcriptional regulation, enhancers are key regulatory elements controlling spatiotemporal gene expression through physical contacting promoters of target genes. The three-dimensional (3D) chromatin architecture is known to orchestrate the establishment of proper enhancer-promoter interactions throughout development and aging. However, studies dissecting the 3D organization of enhancers in MuSCs are just emerging. Here, we provide an overview of the general properties of enhancers and newly developed methods for assessing their activity. In particular, we summarize recent discoveries regarding the 3D rewiring of enhancers during MuSC specification, lineage progression as well as aging.


Enhancer Elements, Genetic , Animals , Humans , Satellite Cells, Skeletal Muscle/metabolism , Satellite Cells, Skeletal Muscle/cytology , Satellite Cells, Skeletal Muscle/physiology , Muscle Development/genetics , Cell Differentiation , Cell Lineage , Chromatin/metabolism , Chromatin/genetics , Gene Expression Regulation, Developmental
13.
Curr Top Dev Biol ; 158: 433-465, 2024.
Article En | MEDLINE | ID: mdl-38670715

In mammals, most of the genome is transcribed to generate a large and heterogeneous variety of non-protein coding RNAs, that are broadly grouped according to their size. Long noncoding RNAs include a very large and versatile group of molecules. Despite only a minority of them has been functionally characterized, there is emerging evidence indicating long noncoding RNAs as important regulators of expression at multiple levels. Several of them have been shown to be modulated during myogenic differentiation, playing important roles in the regulation of skeletal muscle development, differentiation and homeostasis, and contributing to neuromuscular diseases. In this chapter, we have summarized the current knowledge about long noncoding RNAs in skeletal muscle and discussed specific examples of long noncoding RNAs (lncRNAs and circRNAs) regulating muscle stem cell biology. We have also discussed selected long noncoding RNAs involved in the most common neuromuscular diseases.


Muscle Development , Muscle, Skeletal , RNA, Long Noncoding , Regeneration , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism , Animals , Humans , Muscle, Skeletal/metabolism , Muscle, Skeletal/physiology , Regeneration/genetics , Muscle Development/genetics , Cell Differentiation
14.
Cells ; 13(8)2024 Apr 21.
Article En | MEDLINE | ID: mdl-38667334

Meat yield, determined by muscle growth and development, is an important economic trait for the swine industry and a focus of research in animal genetics and breeding. PDZ and LIM domain 5 (PDLIM5) are cytoskeleton-related proteins that play key roles in various tissues and cells. These proteins have multiple isoforms, primarily categorized as short (PDLIM5-short) and long (PDLIM5-long) types, distinguished by the absence and presence of an LIM domain, respectively. However, the expression patterns of swine PDLIM5 isoforms and their regulation during porcine skeletal muscle development remain largely unexplored. We observed that PDLIM5-long was expressed at very low levels in pig muscles and that PDLIM5-short and total PDLIM5 were highly expressed in the muscles of slow-growing pigs, suggesting that PDLIM5-short, the dominant transcript in pigs, is associated with a slow rate of muscle growth. PDLIM5-short suppressed myoblast proliferation and myogenic differentiation in vitro. We also identified two single nucleotide polymorphisms (-258 A > T and -191 T > G) in the 5' flanking region of PDLIM5, which influenced the activity of the promoter and were associated with muscle growth rate in pigs. In summary, we demonstrated that PDLIM5-short negatively regulates myoblast proliferation and differentiation, providing a theoretical basis for improving pig breeding programs.


LIM Domain Proteins , Muscle Development , Animals , Muscle Development/genetics , LIM Domain Proteins/genetics , LIM Domain Proteins/metabolism , Swine , Cell Proliferation/genetics , Cell Differentiation/genetics , Protein Isoforms/genetics , Protein Isoforms/metabolism , Muscle, Skeletal/metabolism , Muscle, Skeletal/growth & development , Polymorphism, Single Nucleotide/genetics , Myoblasts/metabolism , Myoblasts/cytology , Promoter Regions, Genetic/genetics
15.
Sci Rep ; 14(1): 9858, 2024 04 29.
Article En | MEDLINE | ID: mdl-38684760

The progression of muscle development is a pivotal aspect of animal ontogenesis, where miRNA and mRNA exert substantial influence as prominent players. It is important to understand the molecular mechanisms involved in skeletal muscle development to enhance the quality and yield of meat produced by Leizhou goats. We employed RNA sequencing (RNA-SEQ) technology to generate miRNA-mRNA profiles in Leizhou goats, capturing their developmental progression at 0, 3, and 6 months of age. A total of 977 mRNAs and 174 miRNAs were found to be differentially expressed based on our analysis. Metabolic pathways, calcium signaling pathways, and amino acid synthesis and metabolism were found to be significantly enriched among the differentially expressed mRNA in the enrichment analysis. Meanwhile, we found that among these differentially expressed mRNA, some may be related to muscle development, such as MYL10, RYR3, and CSRP3. Additionally,, we identified five muscle-specific miRNAs (miR-127-3p, miR-133a-3p, miR-193b-3p, miR-365-3p, and miR-381) that consistently exhibited high expression levels across all three stages. These miRNAs work with their target genes (FHL3, SESN1, PACSIN3, LMCD1) to regulate muscle development. Taken together, our findings suggest that several miRNAs and mRNAs are involved in regulating muscle development and cell growth in goats. By uncovering the molecular mechanisms involved in muscle growth and development, these findings contribute valuable knowledge that can inform breeding strategies aimed at enhancing meat yield and quality in Leizhou goats.


Gene Expression Profiling , Goats , MicroRNAs , Muscle, Skeletal , RNA, Messenger , Animals , Goats/genetics , Goats/growth & development , MicroRNAs/genetics , MicroRNAs/metabolism , RNA, Messenger/genetics , RNA, Messenger/metabolism , Muscle, Skeletal/metabolism , Muscle, Skeletal/growth & development , Muscle Development/genetics , Gene Expression Regulation, Developmental , Transcriptome
16.
J Cell Physiol ; 239(5): e31226, 2024 May.
Article En | MEDLINE | ID: mdl-38591363

Understanding how skeletal muscle fiber proportions are regulated is essential for understanding muscle function and improving the quality of mutton. While circular RNA (circRNA) has a critical function in myofiber type transformation, the specific mechanisms are not yet fully understood. Prior evidence indicates that circular ubiquitin-specific peptidase 13 (circUSP13) can promote myoblast differentiation by acting as a ceRNA, but its potential role in myofiber switching is still unknown. Herein, we found that circUSP13 enhanced slow myosin heavy chain (MyHC-slow) and suppressed MyHC-fast expression in goat primary myoblasts (GPMs). Meanwhile, circUSP13 evidently enhanced the remodeling of the mitochondrial network while inhibiting the autophagy of GPMs. We obtained fast-dominated myofibers, via treatment with rotenone, and further demonstrated the positive role of circUSP13 in the fast-to-slow transition. Mechanistically, activation of the mitogen-activated protein kinase/extracellular signal-regulated kinase (MAPK/ERK) pathway significantly impaired the slow-to-fast shift in fully differentiated myotubes, which was restored by circUSP13 or IGF1 overexpression. In conclusion, circUSP13 promoted the fast-to-slow myofiber type transition through MAPK/ERK signaling in goat skeletal muscle. These findings provide novel insights into the role of circUSP13 in myofiber type transition and contribute to a better understanding of the genetic mechanisms underlying meat quality.


Goats , MAP Kinase Signaling System , Myosin Heavy Chains , Animals , MAP Kinase Signaling System/physiology , Myosin Heavy Chains/metabolism , Myosin Heavy Chains/genetics , Cell Differentiation , Muscle Fibers, Slow-Twitch/metabolism , Muscle Fibers, Fast-Twitch/metabolism , Muscle, Skeletal/metabolism , Autophagy/physiology , Myoblasts/metabolism , Extracellular Signal-Regulated MAP Kinases/metabolism , Extracellular Signal-Regulated MAP Kinases/genetics , Cells, Cultured , Muscle Fibers, Skeletal/metabolism , Muscle Development/genetics
17.
Stem Cell Reports ; 19(5): 673-688, 2024 May 14.
Article En | MEDLINE | ID: mdl-38579709

Maintenance of mitochondrial function plays a crucial role in the regulation of muscle stem cell (MuSC), but the underlying mechanisms remain ill defined. In this study, we monitored mitophagy in MuSCS under various myogenic states and examined the role of PINK1 in maintaining regenerative capacity. Results indicate that quiescent MuSCs actively express mitophagy genes and exhibit a measurable mitophagy flux and prominent mitochondrial localization to autophagolysosomes, which become rapidly decreased during activation. Genetic disruption of Pink1 in mice reduces PARKIN recruitment to mitochondria and mitophagy in quiescent MuSCs, which is accompanied by premature activation/commitment at the expense of self-renewal and progressive loss of muscle regeneration, but unhindered proliferation and differentiation capacity. Results also show that impaired fate decisions in PINK1-deficient MuSCs can be restored by scavenging excess mitochondrial ROS. These data shed light on the regulation of mitophagy in MuSCs and position PINK1 as an important regulator of their mitochondrial properties and fate decisions.


Cell Differentiation , Mitophagy , Protein Kinases , Regeneration , Stem Cells , Animals , Mitophagy/genetics , Protein Kinases/metabolism , Protein Kinases/genetics , Protein Kinases/deficiency , Mice , Cell Differentiation/genetics , Stem Cells/metabolism , Stem Cells/cytology , Ubiquitin-Protein Ligases/metabolism , Ubiquitin-Protein Ligases/genetics , Ubiquitin-Protein Ligases/deficiency , Mitochondria/metabolism , Muscle, Skeletal/metabolism , Muscle, Skeletal/cytology , Reactive Oxygen Species/metabolism , Muscle Development/genetics , Cell Proliferation
18.
Gene ; 919: 148483, 2024 Aug 15.
Article En | MEDLINE | ID: mdl-38670391

This study conducted transcriptome sequencing on the skeletal muscles of three different anatomical locations across various growth stages to investigate the impact of ages on crucial candidate genes and molecular mechanisms associated with muscle development in Kazakh horses. Sixteen Kazakh horses were selected, and they were divided into four age groups, each with four biological replicates. Tissue samples from the longest dorsal muscle, abdominal muscle, and diaphragm muscle were collected for analysis. The results revealed differential mRNA expression in the longest dorsal muscle between the eight-month group (Group O) and the 10-year group (Group F), with 434 up-regulated and 322 down-regulated genes. In the abdominal muscle, there were 125 up-regulated and 127 down-regulated genes, while in the diaphragm muscle, there were 73 up-regulated and 70 down-regulated genes. In this study, GO enrichment analysis focused on biological processes. KEGG pathway analysis highlighted the Oxidative Phosphorylation pathway for the longest dorsal muscle, annotating 37 differentially expressed genes (DEGs), including ATP5PF, NDUFB8, and ATP5MG, all of which were down-regulated. For the abdominal muscle, the ECM-receptor interaction pathway was enriched, annotating 7 DEGs such as COL4A2, COL4A1, and ITGA5. In the diaphragm muscle, the Hippo signaling pathway was enriched, annotating 6 DEGs, including SERPINE1, RASSF1, and FZD10. This study provides robust data support and a theoretical foundation for a comprehensive understanding of the influence of age on skeletal muscle development in horses.


Gene Expression Profiling , Muscle, Skeletal , Transcriptome , Animals , Horses/genetics , Horses/growth & development , Muscle, Skeletal/metabolism , Muscle, Skeletal/growth & development , Gene Expression Profiling/methods , Aging/genetics , Gene Expression Regulation, Developmental , Age Factors , Muscle Development/genetics , Signal Transduction/genetics , Male
19.
PLoS Biol ; 22(4): e3002575, 2024 Apr.
Article En | MEDLINE | ID: mdl-38683844

Muscles undergo developmental transitions in gene expression and alternative splicing that are necessary to refine sarcomere structure and contractility. CUG-BP and ETR-3-like (CELF) family RNA-binding proteins are important regulators of RNA processing during myogenesis that are misregulated in diseases such as Myotonic Dystrophy Type I (DM1). Here, we report a conserved function for Bruno 1 (Bru1, Arrest), a CELF1/2 family homolog in Drosophila, during early muscle myogenesis. Loss of Bru1 in flight muscles results in disorganization of the actin cytoskeleton leading to aberrant myofiber compaction and defects in pre-myofibril formation. Temporally restricted rescue and RNAi knockdown demonstrate that early cytoskeletal defects interfere with subsequent steps in sarcomere growth and maturation. Early defects are distinct from a later requirement for bru1 to regulate sarcomere assembly dynamics during myofiber maturation. We identify an imbalance in growth in sarcomere length and width during later stages of development as the mechanism driving abnormal radial growth, myofibril fusion, and the formation of hollow myofibrils in bru1 mutant muscle. Molecularly, we characterize a genome-wide transition from immature to mature sarcomere gene isoform expression in flight muscle development that is blocked in bru1 mutants. We further demonstrate that temporally restricted Bru1 rescue can partially alleviate hypercontraction in late pupal and adult stages, but it cannot restore myofiber function or correct structural deficits. Our results reveal the conserved nature of CELF function in regulating cytoskeletal dynamics in muscle development and demonstrate that defective RNA processing due to misexpression of CELF proteins causes wide-reaching structural defects and progressive malfunction of affected muscles that cannot be rescued by late-stage gene replacement.


Cytoskeleton , Drosophila Proteins , Drosophila melanogaster , Muscle Development , RNA-Binding Proteins , Sarcomeres , Animals , Sarcomeres/metabolism , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Muscle Development/genetics , Cytoskeleton/metabolism , Drosophila melanogaster/genetics , Drosophila melanogaster/metabolism , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/genetics , RNA Splicing/genetics , Myofibrils/metabolism , Flight, Animal/physiology , Alternative Splicing/genetics , Gene Expression Regulation, Developmental , Muscles/metabolism
20.
Int J Mol Sci ; 25(8)2024 Apr 13.
Article En | MEDLINE | ID: mdl-38673893

During embryogenesis, basic fibroblast growth factor (bFGF) is released from neural tube and myotome to promote myogenic fate in the somite, and is routinely used for the culture of adult skeletal muscle (SKM) stem cells (MuSC, called satellite cells). However, the mechanism employed by bFGF to promote SKM lineage and MuSC proliferation has not been analyzed in detail. Furthermore, the question of if the post-translational modification (PTM) of bFGF is important to its stemness-promoting effect has not been answered. In this study, GST-bFGF was expressed and purified from E.coli, which lacks the PTM system in eukaryotes. We found that both GST-bFGF and commercially available bFGF activated the Akt-Erk pathway and had strong cell proliferation effect on C2C12 myoblasts and MuSC. GST-bFGF reversibly compromised the myogenesis of C2C12 myoblasts and MuSC, and it increased the expression of Myf5, Pax3/7, and Cyclin D1 but strongly repressed that of MyoD, suggesting the maintenance of myogenic stemness amid repressed MyoD expression. The proliferation effect of GST-bFGF was conserved in C2C12 over-expressed with MyoD (C2C12-tTA-MyoD), implying its independence of the down-regulation of MyoD. In addition, the repressive effect of GST-bFGF on myogenic differentiation was almost totally rescued by the over-expression of MyoD. Together, these evidences suggest that (1) GST-bFGF and bFGF have similar effects on myogenic cell proliferation and differentiation, and (2) GST-bFGF can promote MuSC stemness and proliferation by differentially regulating MRFs and Pax3/7, (3) MyoD repression by GST-bFGF is reversible and independent of the proliferation effect, and (4) GST-bFGF can be a good substitute for bFGF in sustaining MuSC stemness and proliferation.


Cell Proliferation , Fibroblast Growth Factor 2 , Muscle Development , MyoD Protein , Myoblasts , Muscle Development/genetics , Animals , Mice , MyoD Protein/metabolism , MyoD Protein/genetics , Fibroblast Growth Factor 2/metabolism , Fibroblast Growth Factor 2/pharmacology , Fibroblast Growth Factor 2/genetics , Myoblasts/metabolism , Myoblasts/cytology , Cell Line , PAX7 Transcription Factor/metabolism , PAX7 Transcription Factor/genetics , PAX3 Transcription Factor/metabolism , PAX3 Transcription Factor/genetics , Myogenic Regulatory Factor 5/metabolism , Myogenic Regulatory Factor 5/genetics , Cyclin D1/metabolism , Cyclin D1/genetics , Satellite Cells, Skeletal Muscle/metabolism , Satellite Cells, Skeletal Muscle/cytology , Cell Differentiation , Proto-Oncogene Proteins c-akt/metabolism , Muscle, Skeletal/metabolism , Muscle, Skeletal/cytology
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