Literature DB >> 34510381

Generation and Characterization of a Skeletal Muscle Cell-Based Model Carrying One Single Gne Allele: Implications in Actin Dynamics.

Shamulailatpam Shreedarshanee Devi1, Rashmi Yadav1, Fluencephila Mashangva1, Priyanka Chaudhary1, Shweta Sharma1, Ranjana Arya2,3.   

Abstract

UDP-N-Acetyl glucosamine-2 epimerase/N-acetyl mannosamine kinase (GNE) catalyzes key enzymatic reactions in the biosynthesis of sialic acid. Mutation in GNE gene causes GNE myopathy (GNEM) characterized by adult-onset muscle weakness and degeneration. However, recent studies propose alternate roles of GNE in other cellular processes beside sialic acid biosynthesis, particularly interaction of GNE with α-actinin 1 and 2. Lack of appropriate model system limits drug and treatment options for GNEM as GNE knockout was found to be embryonically lethal. In the present study, we have generated L6 rat skeletal muscle myoblast cell-based model system carrying one single Gne allele where GNE gene is knocked out at exon-3 using AAV mediated SEPT homology recombination (SKM-GNEHz). The cell line was heterozygous for GNE gene with one wild type and one truncated allele as confirmed by sequencing. The phenotype showed reduced GNE epimerase activity with little reduction in sialic acid content. In addition, the heterozygous GNE knockout cells revealed altered cytoskeletal organization with disrupted actin filament. Further, we observed increased levels of RhoA leading to reduced cofilin activity and causing reduced F-actin polymerization. The disturbed signaling cascade resulted in reduced migration of SKM-GNEHz cells. Our study indicates possible role of GNE in regulating actin dynamics and cell migration of skeletal muscle cell. The skeletal muscle cell-based system offers great potential in understanding pathomechanism and target identification for GNEM.
© 2021. The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature.

Entities:  

Keywords:  Actin dynamics; GNE myopathy; L6 myoblast; SEPT homology recombination; Sialylation; Single gene mutation disorders

Mesh:

Substances:

Year:  2021        PMID: 34510381     DOI: 10.1007/s12035-021-02549-w

Source DB:  PubMed          Journal:  Mol Neurobiol        ISSN: 0893-7648            Impact factor:   5.590


  67 in total

1.  Distal myopathy with rimmed vacuoles: report on clinical characteristics in 23 cases.

Authors:  A Nalini; N Gayathri; Rose Dawn
Journal:  Neurol India       Date:  2010 Mar-Apr       Impact factor: 2.117

2.  Distal myopathy with rimmed vacuoles is allelic to hereditary inclusion body myopathy.

Authors:  I Nishino; S Noguchi; K Murayama; A Driss; K Sugie; Y Oya; T Nagata; K Chida; T Takahashi; Y Takusa; T Ohi; J Nishimiya; N Sunohara; E Ciafaloni; M Kawai; M Aoki; I Nonaka
Journal:  Neurology       Date:  2002-12-10       Impact factor: 9.910

Review 3.  The Inherited Neuromuscular Disorder GNE Myopathy: Research to Patient Care.

Authors:  Kapila Awasthi; Ranjana Arya; Alok Bhattacharya; Sudha Bhattacharya
Journal:  Neurol India       Date:  2019 Sep-Oct       Impact factor: 2.117

4.  Atypical presentation of GNE myopathy with asymmetric hand weakness.

Authors:  John Karl L de Dios; Joseph A Shrader; Galen O Joe; Jeffrey C McClean; Kayla Williams; Robert Evers; May Christine V Malicdan; Carla Ciccone; Ami Mankodi; Marjan Huizing; John C McKew; David A Bluemke; William A Gahl; Nuria Carrillo-Carrasco
Journal:  Neuromuscul Disord       Date:  2014-08-07       Impact factor: 4.296

5.  The UDP-N-acetylglucosamine 2-epimerase/N-acetylmannosamine kinase gene is mutated in recessive hereditary inclusion body myopathy.

Authors:  I Eisenberg; N Avidan; T Potikha; H Hochner; M Chen; T Olender; M Barash; M Shemesh; M Sadeh; G Grabov-Nardini; I Shmilevich; A Friedmann; G Karpati; W G Bradley; L Baumbach; D Lancet; E B Asher; J S Beckmann; Z Argov; S Mitrani-Rosenbaum
Journal:  Nat Genet       Date:  2001-09       Impact factor: 38.330

6.  Familial distal myopathy with rimmed vacuole and lamellar (myeloid) body formation.

Authors:  I Nonaka; N Sunohara; S Ishiura; E Satoyoshi
Journal:  J Neurol Sci       Date:  1981-07       Impact factor: 3.181

7.  "Rimmed vacuole myopathy" sparing the quadriceps. A unique disorder in Iranian Jews.

Authors:  Z Argov; R Yarom
Journal:  J Neurol Sci       Date:  1984-04       Impact factor: 3.181

Review 8.  GNE Myopathy: Etiology, Diagnosis, and Therapeutic Challenges.

Authors:  Nuria Carrillo; May C Malicdan; Marjan Huizing
Journal:  Neurotherapeutics       Date:  2018-10       Impact factor: 7.620

9.  GNE genotype explains 20% of phenotypic variability in GNE myopathy.

Authors:  Oksana Pogoryelova; Ian J Wilson; Hank Mansbach; Zohar Argov; Ichizo Nishino; Hanns Lochmüller
Journal:  Neurol Genet       Date:  2019-02-01

10.  Upregulation of Hallmark Muscle Genes Protects GneM743T/M743T Mutated Knock-In Mice From Kidney and Muscle Phenotype.

Authors:  Hadar Benyamini; Yehuda Kling; Lena Yakovlev; Michal Becker Cohen; Yuval Nevo; Sharona Elgavish; Avi Harazi; Zohar Argov; Ilan Sela; Stella Mitrani-Rosenbaum
Journal:  J Neuromuscul Dis       Date:  2020
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  2 in total

1.  Effect of GNE Mutations on Cytoskeletal Network Proteins: Potential Gateway to Understand Pathomechanism of GNEM.

Authors:  Rashmi Yadav; Jyoti Oswalia; Anu Ghosh; Ranjana Arya
Journal:  Neuromolecular Med       Date:  2022-05-03       Impact factor: 3.843

Review 2.  The role of amyloid β in the pathological mechanism of GNE myopathy.

Authors:  Tongtong Zhang; Ren Shang; Jing Miao
Journal:  Neurol Sci       Date:  2022-07-29       Impact factor: 3.830

  2 in total

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