Literature DB >> 31927726

Precise editing of myostatin signal peptide by CRISPR/Cas9 increases the muscle mass of Liang Guang Small Spotted pigs.

Ruiqiang Li1, Wu Zeng1, Miao Ma1, Zixuan Wei1, Hongbo Liu1, Xiaofeng Liu1, Min Wang1, Xuan Shi1, Jianhua Zeng2, Linfang Yang2, Delin Mo1, Xiaohong Liu1, Yaosheng Chen1, Zuyong He3.   

Abstract

Myostatin (MSTN), a member of the transforming growth factor-β superfamily, is a negative regulator of muscle growth and development. Disruption of the MSTN gene in various mammalian species markedly promotes muscle growth. Previous studies have mainly focused on the disruption of the MSTN peptide coding region in pigs but not on the modification of the signal peptide region. In this study, the clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR associated protein 9 (Cas9) system was used to successfully introduce two mutations (PVD20H and GP19del) in the MSTN signal peptide region of the indigenous Chinese pig breed, Liang Guang Small Spotted pig. Both mutations in signal peptide increased the muscle mass without inhibiting the production of mature MSTN peptide in the cells. Histological analysis revealed that the enhanced muscle mass in MSTN+/PVD20H pig was mainly due to an increase in the number of muscle fibers. The expression of MSTN in the longissimus dorsi muscle of MSTN+/PVD20H and MSTNKO/PVD20H pigs was significantly downregulated, whereas that of myogenic regulatory factors, including MyoD, Myogenin, and Myf-5, was significantly upregulated when compared to those in the longissimus dorsi muscle of wild-type pigs. Meanwhile, the mutations also activated the PI3K/Akt pathway. The results of this study indicated that precise editing of the MSTN signal peptide can enhance porcine muscle development without markedly affecting the expression of mature MSTN peptide, which could exert other beneficial biological functions in the edited pigs.

Entities:  

Keywords:  CRISPR/Cas9; Liang Guang Small Spotted pig; Muscle mass; Myostatin; Signal peptide

Mesh:

Substances:

Year:  2020        PMID: 31927726     DOI: 10.1007/s11248-020-00188-w

Source DB:  PubMed          Journal:  Transgenic Res        ISSN: 0962-8819            Impact factor:   2.788


  55 in total

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Journal:  Mol Reprod Dev       Date:  2015-11-09       Impact factor: 2.609

2.  The regulation and action of myostatin as a negative regulator of muscle development during avian embryogenesis.

Authors:  Helge Amthor; Ruijin Huang; Iain McKinnell; Bodo Christ; Ravi Kambadur; Mridula Sharma; Ketan Patel
Journal:  Dev Biol       Date:  2002-11-15       Impact factor: 3.582

Review 3.  The myostatin gene: an overview of mechanisms of action and its relevance to livestock animals.

Authors:  D Aiello; K Patel; E Lasagna
Journal:  Anim Genet       Date:  2018-08-20       Impact factor: 3.169

4.  Autosomal Dominant PTH Gene Signal Sequence Mutation in a Family With Familial Isolated Hypoparathyroidism.

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Journal:  J Clin Endocrinol Metab       Date:  2017-11-01       Impact factor: 5.958

5.  Induction of cachexia in mice by systemically administered myostatin.

Authors:  Teresa A Zimmers; Monique V Davies; Leonidas G Koniaris; Paul Haynes; Aurora F Esquela; Kathy N Tomkinson; Alexandra C McPherron; Neil M Wolfman; Se-Jin Lee
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6.  Myostatin reduces Akt/TORC1/p70S6K signaling, inhibiting myoblast differentiation and myotube size.

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8.  Myostatin inhibits IGF-I-induced myotube hypertrophy through Akt.

Authors:  Michael R Morissette; Stuart A Cook; Cattleya Buranasombati; Michael A Rosenberg; Anthony Rosenzweig
Journal:  Am J Physiol Cell Physiol       Date:  2009-09-16       Impact factor: 4.249

9.  The role of myostatin in muscle wasting: an overview.

Authors:  Yulia Elkina; Stephan von Haehling; Stefan D Anker; Jochen Springer
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10.  Genetic disruption of myostatin reduces the development of proatherogenic dyslipidemia and atherogenic lesions in Ldlr null mice.

Authors:  Powen Tu; Shalender Bhasin; Paul W Hruz; Karen L Herbst; Lawrence W Castellani; Ning Hua; James A Hamilton; Wen Guo
Journal:  Diabetes       Date:  2009-06-09       Impact factor: 9.461

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  8 in total

Review 1.  Application of CRISPR/Cas9 System in Establishing Large Animal Models.

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Journal:  Front Cell Dev Biol       Date:  2022-05-17

2.  Myostatin suppresses adipogenic differentiation and lipid accumulation by activating crosstalk between ERK1/2 and PKA signaling pathways in porcine subcutaneous preadipocytes.

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3.  Generation of Transgenic Cloned Buffalo Embryos Harboring the EGFP Gene in the Y Chromosome Using CRISPR/Cas9-Mediated Targeted Integration.

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Review 4.  Improvements in Gene Editing Technology Boost Its Applications in Livestock.

Authors:  Iuri Viotti Perisse; Zhiqiang Fan; Galina N Singina; Kenneth L White; Irina A Polejaeva
Journal:  Front Genet       Date:  2021-01-08       Impact factor: 4.599

5.  Comparative Genome and Transcriptome Integration Studies Reveal the Mechanism of Pectoral Muscle Development and Function in Pigeons.

Authors:  Haobin Hou; Xiaoliang Wang; Changsuo Yang; Xia Cai; Wenwei Lv; Yingying Tu; Aodungerile Bao; Quanli Wu; Weimin Zhao; Junfeng Yao; Weixing Ding
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6.  The application of new breeding technology based on gene editing in pig industry - A review.

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7.  Application of the modified cytosine base-editing in the cultured cells of bama minipig.

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Journal:  Biotechnol Lett       Date:  2021-06-30       Impact factor: 2.461

8.  Muscle Hyperplasia in Japanese Quail by Single Amino Acid Deletion in MSTN Propeptide.

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  8 in total

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