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1.
Acta Otolaryngol ; 144(3): 198-206, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38662892

ABSTRACT

BACKGROUND: Recycling of synaptic vesicles plays an important role in vesicle pool replenishment, neurotransmitter release and synaptic plasticity. Clathrin-mediated endocytosis (CME) is considered to be the main mechanism for synaptic vesicle replenishment. AP-2 (adaptor-related protein complex 2) and myosin Ⅵ are known as key proteins that regulate the structure and dynamics of CME. OBJECTIVE: This study aims to reveal the spatiotemporal expression of AP-2/myosin Ⅵ in inner hair cells (IHCs) of the mouse cochlea and its correlation with auditory function. MATERIAL AND METHODS: Immunofluorescence was used to detect the localization and expression of AP-2 and myosin Ⅵ in cochlear hair cells (HCs) of CBA/CaJ mice of various ages. qRT-PCR was used to verify the differential expression of AP-2 and myosin Ⅵ mRNA in the mouse cochlea, and ABR tests were administered to mice of various ages. A preliminary analysis of the correlation between AP-2/myosin Ⅵ levels and auditory function was conducted. RESULTS: AP-2 was located in the cytoplasmic region of IHCs and was mainly expressed in the basal region of IHCs and the area near ribbon synapses, while myosin Ⅵ was expressed in the cytoplasmic region of IHCs and OHCs. Furthermore, AP-2 and myosin Ⅵ were not significant detected in the cochleae of P7 mice; the expression level reached a peak at P35 and then decreased significantly with age. The expression patterns and expression levels of AP-2 and myosin Ⅵ in the cochleae of the mice were consistent with the development of the auditory system. CONCLUSIONS AND SIGNIFICANCE: AP-2 and myosin Ⅵ protein expression may differ in mice of different ages, and this variation probably leads to a difference in the efficiency in CME; it may also cause a defect in IHC function.


Subject(s)
Hair Cells, Auditory, Inner , Mice, Inbred CBA , Animals , Hair Cells, Auditory, Inner/metabolism , Mice , Adaptor Protein Complex 2/metabolism , Adaptor Protein Complex 2/genetics , Evoked Potentials, Auditory, Brain Stem , Nonmuscle Myosin Type IIB/metabolism , Nonmuscle Myosin Type IIB/genetics , Cochlea/metabolism
2.
Genes Chromosomes Cancer ; 63(3): e23227, 2024 03.
Article in English | MEDLINE | ID: mdl-38517106

ABSTRACT

AIMS: Kinase fusion-positive soft tissue tumors represent an emerging, molecularly defined group of mesenchymal tumors with a wide morphologic spectrum and diverse activating kinases. Here, we present two cases of soft tissue tumors with novel LTK fusions. METHODS AND RESULTS: Both cases presented as acral skin nodules (big toe and middle finger) in pediatric patients (17-year-old girl and 2-year-old boy). The tumors measured 2 and 3 cm in greatest dimension. Histologically, both cases exhibited bland-looking spindle cells infiltrating adipose tissue and accompanied by collagenous stroma. One case additionally displayed perivascular hyalinization and band-like stromal collagen. Both cases exhibited focal S100 staining, and one case had patchy coexpression of CD34. Targeted RNA-seq revealed the presence of novel in-frame MYH9::LTK and MYH10::LTK fusions, resulting in upregulation of LTK expression. Of interest, DNA methylation-based unsupervised clustering analysis in one case showed that the tumor clustered with dermatofibrosarcoma protuberans (DFSP). One tumor was excised with amputation with no local recurrence or distant metastasis at 18-month follow-up. The other case was initially marginally excised with local recurrence after one year, followed by wide local excision, with no evidence of disease at 10 years of follow-up. CONCLUSIONS: This is the first reported case series of soft tissue tumors harboring LTK fusion, expanding the molecular landscape of soft tissue tumors driven by activating kinase fusions. Furthermore, studies involving a larger number of cases and integrated genomic analyses will be warranted to fully elucidate the pathogenesis and classification of these tumors.


Subject(s)
Neoplasms, Connective and Soft Tissue , Oncogene Proteins, Fusion , Skin Neoplasms , Soft Tissue Neoplasms , Adolescent , Child , Female , Humans , Male , Antigens, CD34/metabolism , Biomarkers, Tumor/genetics , Neoplasms, Connective and Soft Tissue/genetics , Neoplasms, Connective and Soft Tissue/pathology , Receptor Protein-Tyrosine Kinases , Skin Neoplasms/pathology , Soft Tissue Neoplasms/genetics , Soft Tissue Neoplasms/pathology , Oncogene Proteins, Fusion/genetics , Myosin Heavy Chains/genetics , Nonmuscle Myosin Type IIB/genetics
3.
Mol Biol Cell ; 34(13): ar129, 2023 Dec 01.
Article in English | MEDLINE | ID: mdl-37819702

ABSTRACT

Adherens junctions are cadherin-based structures critical for cellular architecture. E-cadherin junctions in mature epithelial cell monolayers tether to an apical actomyosin ring to form the zonula adherens (ZA). We have previously shown that the adherens junction protein PLEKHA7 associates with and regulates the function of the core RNA interference (RNAi) component AGO2 specifically at the ZA. However, the mechanism mediating AGO2 recruitment to the ZA remained unexplored. Here, we reveal that this ZA-specific recruitment of AGO2 depends on both the structural and tensile integrity of the actomyosin cytoskeleton. We found that depletion of not only PLEKHA7, but also either of the three PLEKHA7-interacting, LIM-domain family proteins, namely LMO7, LIMCH1, and PDLIM1, results in disruption of actomyosin organization and tension, as well as disruption of AGO2 junctional localization and of its miRNA-binding ability. We also show that AGO2 binds Myosin IIB and that PLEKHA7, LMO7, LIMCH1, and PDLIM1 all disrupt interaction of AGO2 with Myosin IIB at the ZA. These results demonstrate that recruitment of AGO2 to the ZA is sensitive to actomyosin perturbations, introducing the concept of mechanosensitive RNAi machinery, with potential implications in tissue remodeling and in disease.


Subject(s)
Actins , Adherens Junctions , Actins/metabolism , Actomyosin/metabolism , Adherens Junctions/metabolism , Cadherins/metabolism , Cytokinesis , Epithelial Cells/metabolism , Nonmuscle Myosin Type IIB/metabolism , Humans
4.
Mol Biol Cell ; 34(7): ar71, 2023 06 01.
Article in English | MEDLINE | ID: mdl-37074945

ABSTRACT

Nonmuscle myosin IIB (NMIIB) is considered a primary force generator during cell motility. Yet many cell types, including motile cells, do not necessarily express NMIIB. Given the potential of cell engineering for the next wave of technologies, adding back NMIIB could be a strategy for creating supercells with strategically altered cell morphology and motility. However, we wondered what unforeseen consequences could arise from such an approach. Here, we leveraged pancreatic cancer cells, which do not express NMIIB. We generated a series of cells where we added back NMIIB and strategic mutants that increase the ADP-bound time or alter the phosphorylation control of bipolar filament assembly. We characterized the cellular phenotypes and conducted RNA-seq analysis. The addition of NMIIB and the different mutants all have specific consequences for cell morphology, metabolism, cortical tension, mechanoresponsiveness, and gene expression. Major modes of ATP production are shifted, including alterations in spare respiratory capacity and the dependence on glycolysis or oxidative phosphorylation. Several metabolic and growth pathways undergo significant changes in gene expression. This work demonstrates that NMIIB is highly integrated with many cellular systems and simple cell engineering has a profound impact that extends beyond the primary contractile activity presumably being added to the cells.


Subject(s)
Nonmuscle Myosin Type IIA , Nonmuscle Myosin Type IIB , Nonmuscle Myosin Type IIB/metabolism , Cellular Reprogramming , Cytoskeleton/metabolism , Muscle Contraction , Phosphorylation , Nonmuscle Myosin Type IIA/metabolism
5.
Autophagy ; 19(7): 2045-2061, 2023 07.
Article in English | MEDLINE | ID: mdl-36849436

ABSTRACT

Dysfunction of the endosomal sorting complex required for transport (ESCRT) has been linked to frontotemporal dementia (FTD) due in part to the accumulation of unsealed autophagosomes. However, the mechanisms of ESCRT-mediated membrane closure events on phagophores remain largely unknown. In this study, we found that partial knockdown of non-muscle MYH10/myosin IIB/zip rescues neurodegeneration in both Drosophila and human iPSC-derived cortical neurons expressing FTD-associated mutant CHMP2B, a subunit of ESCRT-III. We also found that MYH10 binds and recruits several autophagy receptor proteins during autophagosome formation induced by mutant CHMP2B or nutrient starvation. Moreover, MYH10 interacted with ESCRT-III to regulate phagophore closure by recruiting ESCRT-III to damaged mitochondria during PRKN/parkin-mediated mitophagy. Evidently, MYH10 is involved in the initiation of induced but not basal autophagy and also links ESCRT-III to mitophagosome sealing, revealing novel roles of MYH10 in the autophagy pathway and in ESCRT-related FTD pathogenesis.Abbreviations: ALS: amyotrophic lateral sclerosis; AP: autophagosome; Atg: autophagy-related; ESCRT: endosomal sorting complex required for transport; FTD: frontotemporal dementia.


Subject(s)
Autophagosomes , Frontotemporal Dementia , Humans , Autophagosomes/metabolism , Endosomal Sorting Complexes Required for Transport/metabolism , Frontotemporal Dementia/genetics , Frontotemporal Dementia/metabolism , Nonmuscle Myosin Type IIB/metabolism , Autophagy/physiology , Neurons/metabolism , Homeostasis
6.
J Biol Chem ; 298(12): 102634, 2022 12.
Article in English | MEDLINE | ID: mdl-36273584

ABSTRACT

Myosin B (MyoB) is a class 14 myosin expressed in all invasive stages of the malaria parasite, Plasmodium falciparum. It is not associated with the glideosome complex that drives motility and invasion of host cells. During red blood cell invasion, MyoB remains at the apical tip of the merozoite but is no longer observed once invasion is completed. MyoB is not essential for parasite survival, but when it is knocked out, merozoites are delayed in the initial stages of red blood cell invasion, giving rise to a growth defect that correlates with reduced invasion success. Therefore, further characterization is needed to understand how MyoB contributes to parasite invasion. Here, we have expressed and purified functional MyoB with the help of parasite-specific chaperones Hsp90 and Unc45, characterized its binding to actin and its known light chain MLC-B using biochemical and biophysical methods and determined its low-resolution structure in solution using small angle X-ray scattering. In addition to MLC-B, we found that four other putative regulatory light chains bind to the MyoB IQ2 motif in vitro. The purified recombinant MyoB adopted the overall shape of a myosin, exhibited actin-activated ATPase activity, and moved actin filaments in vitro. Additionally, we determined that the ADP release rate was faster than the ATP turnover number, and thus, does not appear to be rate limiting. This, together with the observed high affinity to actin and the specific localization of MyoB, may point toward a role in tethering and/or force sensing during early stages of invasion.


Subject(s)
Nonmuscle Myosin Type IIB , Plasmodium falciparum , Protozoan Proteins , Actins/metabolism , Calmodulin/genetics , Calmodulin/metabolism , Myosins/metabolism , Nonmuscle Myosin Type IIB/metabolism , Plasmodium falciparum/metabolism , Protozoan Proteins/metabolism
7.
Proc Natl Acad Sci U S A ; 119(43): e2200215119, 2022 10 25.
Article in English | MEDLINE | ID: mdl-36252004

ABSTRACT

Cancer cachexia is a lethal metabolic syndrome featuring muscle wasting with preferential loss of fast-twitching muscle mass through an undefined mechanism. Here, we show that cancer induces muscle wasting by selectively degrading myosin heavy chain (MHC) subtypes IIb and IIx through E3 ligase UBR2-mediated ubiquitylation. Induction of MHC loss and atrophy in C2C12 myotubes and mouse tibialis anterior (TA) by murine cancer cells required UBR2 up-regulation by cancer. Genetic gain or loss of UBR2 function inversely altered MHC level and muscle mass in TA of tumor-free mice. UBR2 selectively interacted with and ubiquitylated MHC-IIb and MHC-IIx through its substrate recognition and catalytic domain, respectively, in C2C12 myotubes. Elevation of UBR2 in muscle of tumor-bearing or free mice caused loss of MHC-IIb and MHC-IIx but not MHC-I and MHC-IIa or other myofibrillar proteins, including α-actin, troponin, tropomyosin, and tropomodulin. Muscle-specific knockout of UBR2 spared KPC tumor-bearing mice from losing MHC-IIb and MHC-IIx, fast-twitching muscle mass, cross-sectional area, and contractile force. The rectus abdominis (RA) muscle of patients with cachexia-prone cancers displayed a selective reduction of MHC-IIx in correlation with higher UBR2 levels. These data suggest that UBR2 is a regulator of MHC-IIb/IIx essential for cancer-induced muscle wasting, and that therapeutic interventions can be designed by blocking UBR2 up-regulation by cancer.


Subject(s)
Cachexia , Myosin Heavy Chains , Neoplasms , Ubiquitin-Protein Ligases , Animals , Mice , Actins/metabolism , Cachexia/genetics , Muscle Fibers, Skeletal/metabolism , Muscle Fibers, Skeletal/pathology , Muscle, Skeletal/metabolism , Muscle, Skeletal/pathology , Myosin Heavy Chains/genetics , Myosin Heavy Chains/metabolism , Neoplasms/complications , Neoplasms/genetics , Neoplasms/metabolism , Nonmuscle Myosin Type IIB/metabolism , Tropomodulin/metabolism , Tropomyosin/metabolism , Troponin/metabolism , Ubiquitin-Protein Ligases/genetics , Ubiquitin-Protein Ligases/metabolism
8.
Genet Med ; 24(10): 2065-2078, 2022 10.
Article in English | MEDLINE | ID: mdl-35980381

ABSTRACT

PURPOSE: Nonmuscle myosin II complexes are master regulators of actin dynamics that play essential roles during embryogenesis with vertebrates possessing 3 nonmuscle myosin II heavy chain genes, MYH9, MYH10, and MYH14. As opposed to MYH9 and MYH14, no recognizable disorder has been associated with MYH10. We sought to define the clinical characteristics and molecular mechanism of a novel autosomal dominant disorder related to MYH10. METHODS: An international collaboration identified the patient cohort. CAS9-mediated knockout cell models were used to explore the mechanism of disease pathogenesis. RESULTS: We identified a cohort of 16 individuals with heterozygous MYH10 variants presenting with a broad spectrum of neurodevelopmental disorders and variable congenital anomalies that affect most organ systems and were recapitulated in animal models of altered MYH10 activity. Variants were typically de novo missense changes with clustering observed in the motor domain. MYH10 knockout cells showed defects in primary ciliogenesis and reduced ciliary length with impaired Hedgehog signaling. MYH10 variant overexpression produced a dominant-negative effect on ciliary length. CONCLUSION: These data presented a novel genetic cause of isolated and syndromic neurodevelopmental disorders related to heterozygous variants in the MYH10 gene with implications for disrupted primary cilia length control and altered Hedgehog signaling in disease pathogenesis.


Subject(s)
Neurodevelopmental Disorders , Nonmuscle Myosin Type IIB , Actins , Cilia/genetics , Hedgehog Proteins/genetics , Humans , Myosin Heavy Chains/genetics , Neurodevelopmental Disorders/genetics , Nonmuscle Myosin Type IIB/genetics
9.
Respir Res ; 23(1): 167, 2022 Jun 23.
Article in English | MEDLINE | ID: mdl-35739508

ABSTRACT

Hermansky-Pudlak syndrome (HPS) is an autosomal recessive disorder characterized by improper biogenesis of lysosome-related organelles (LROs). Lung fibrosis is the leading cause of death among adults with HPS-1 and HPS-4 genetic types, which are associated with defects in the biogenesis of lysosome-related organelles complex-3 (BLOC-3), a guanine exchange factor (GEF) for a small GTPase, Rab32. LROs are not ubiquitously present in all cell types, and specific cells utilize LROs to accomplish dedicated functions. Fibroblasts are not known to contain LROs, and the function of BLOC-3 in fibroblasts is unclear. Here, we report that lung fibroblasts isolated from patients with HPS-1 have increased migration capacity. Silencing HPS-1 in normal lung fibroblasts similarly leads to increased migration. We also show that the increased migration is driven by elevated levels of Myosin IIB. Silencing HPS1 or RAB32 in normal lung fibroblasts leads to increased MYOSIN IIB levels. MYOSIN IIB is downstream of p38-MAPK, which is a known target of angiotensin receptor signaling. Treatment with losartan, an angiotensin receptor inhibitor, decreases MYOSIN IIB levels and impedes HPS lung fibroblast migration in vitro. Furthermore, pharmacologic inhibition of angiotensin receptor with losartan seemed to decrease migration of HPS lung fibroblasts in vivo in a zebrafish xenotransplantation model. Taken together, we demonstrate that BLOC-3 plays an important role in MYOSIN IIB regulation within lung fibroblasts and contributes to fibroblast migration.


Subject(s)
Hermanski-Pudlak Syndrome , Albinism , Animals , Cell Movement , Fibroblasts/metabolism , Hemorrhagic Disorders , Hermanski-Pudlak Syndrome/genetics , Humans , Losartan/metabolism , Lung/metabolism , Nonmuscle Myosin Type IIB/metabolism , Receptors, Angiotensin , Zebrafish
10.
Eur J Cell Biol ; 101(2): 151213, 2022 Apr.
Article in English | MEDLINE | ID: mdl-35257961

ABSTRACT

Nonmuscle myosin II minifilaments have emerged as central elements for force generation and mechanosensing by mammalian cells. Each minifilament can have a different composition and activity due to the existence of the three nonmuscle myosin II paralogs A, B and C and their respective phosphorylation pattern. We have used CRISPR/Cas9-based knockout cells, quantitative image analysis and mathematical modeling to dissect the dynamic processes that control the formation and activity of heterotypic minifilaments and found a strong asymmetry between paralogs A and B. Loss of NM IIA completely abrogates regulatory light chain phosphorylation and reduces the level of assembled NM IIB. Activated NM IIB preferentially co-localizes with pre-formed NM IIA minifilaments and stabilizes the filament in a force-dependent mechanism. NM IIC is only weakly coupled to these processes. We conclude that NM IIA and B play clearly defined complementary roles during assembly of functional minifilaments. NM IIA is responsible for the formation of nascent pioneer minifilaments. NM IIB incorporates into these and acts as a clutch that limits the force output to prevent excessive NM IIA activity. Together these two paralogs form a balanced system for regulated force generation.


Subject(s)
Nonmuscle Myosin Type IIA , Nonmuscle Myosin Type IIB , Animals , Cytoskeleton/metabolism , Mammals/metabolism , Myosin Type II , Nonmuscle Myosin Type IIA/metabolism , Nonmuscle Myosin Type IIB/genetics , Nonmuscle Myosin Type IIB/metabolism , Phosphorylation
11.
Int J Mol Sci ; 23(4)2022 Feb 21.
Article in English | MEDLINE | ID: mdl-35216482

ABSTRACT

Adipogenesis is dependent on cytoskeletal remodeling that determines and maintains cellular shape and function. Cytoskeletal proteins contribute to the filament-based network responsible for controlling the shape of adipocytes and promoting the intracellular trafficking of cellular components. Currently, the understanding of these mechanisms and their effect on differentiation and adipocyte function remains incomplete. In this study, we identified the non-muscle myosin 10 (MYH10) as a novel regulator of adipogenesis and adipocyte function through its interaction with the insulin-dependent glucose transporter 4 (GLUT4). MYH10 depletion in preadipocytes resulted in impaired adipogenesis, with knockdown cells exhibiting an absence of morphological alteration and molecular signals. MYH10 was shown in a complex with GLUT4 in adipocytes, an interaction regulated by insulin induction. The missing adipogenic capacity of MYH10 knockdown cells was restored when the cells took up GLUT4 vesicles from neighbor wildtype cells in a co-culture system. This signaling cascade is regulated by the protein kinase C ζ (PKCζ), which interacts with MYH10 to modify the localization and interaction of both GLUT4 and MYH10 in adipocytes. Overall, our study establishes MYH10 as an essential regulator of GLUT4 translocation, affecting both adipogenesis and adipocyte function, highlighting its importance in future cytoskeleton-based studies in adipocytes.


Subject(s)
Adipocytes/metabolism , Adipocytes/physiology , Adipogenesis/physiology , Glucose Transporter Type 4/metabolism , Myosin Heavy Chains/metabolism , Nonmuscle Myosin Type IIB/metabolism , 3T3-L1 Cells , Animals , Cell Differentiation/physiology , Cell Line , Glucose/metabolism , Mice , Mice, Inbred C57BL , Myosins/metabolism , Phosphorylation/physiology , Protein Kinase C/metabolism , Signal Transduction/physiology
12.
Cancer Lett ; 524: 245-258, 2022 01 01.
Article in English | MEDLINE | ID: mdl-34715250

ABSTRACT

The stiffening of the extracellular matrix (ECM) during tumor progression results in an increase in cancer cell motility. In cell migration, two major isoforms of non-muscle myosin II (NMII), NMIIA and NMIIB, are expressed and assembled into the cytoskeleton. However, the isoform-specific regulatory roles of NMIIA and NMIIB as well as the underlying mechanisms in response to mechanical cues of the ECM are still elusive. Here, based on polyacrylamide (PAA) gels with tunable elastic modulus, we mimicked the mechanical properties of tumor tissue at different stages of breast cancer in vitro and investigated the distinct roles of NMII isoforms in the regulation of substrate stiffness. We demonstrate that NMIIA is engaged in establishing cell polarity by facilitating lamellipodia formation, focal adhesion turnover, and actin polymerization at the cell leading edge, while NMIIB is recruited to the cell perinuclear region and contributes to traction force generation and polarized distribution, both in a substrate stiffness-dependent manner. We further validated that substrate stiffness modulates the distribution and activation of NMII isoforms via the Rac1/p-PAK1/pS1916-NMIIA and PKCζ/pS1935-NMIIB signaling pathways in a site- and kinase-specific phosphoregulation manner. Our study is helpful for understanding the mechanotransduction of cancer cells and provides inspiration for molecular targets in antimetastatic therapy.


Subject(s)
Breast Neoplasms/genetics , Extracellular Matrix/genetics , Nonmuscle Myosin Type IIA/genetics , Nonmuscle Myosin Type IIB/genetics , Breast Neoplasms/drug therapy , Breast Neoplasms/pathology , Cell Line, Tumor , Cell Movement/genetics , Cell Polarity/genetics , Female , Humans , Mechanotransduction, Cellular/genetics , Protein Isoforms/genetics , Signal Transduction/genetics , Substrate Specificity , p21-Activated Kinases/genetics , rac1 GTP-Binding Protein/genetics
13.
Circ Res ; 130(1): 112-129, 2022 01 07.
Article in English | MEDLINE | ID: mdl-34816743

ABSTRACT

BACKGROUND: Mutations in genes encoding sarcomeric proteins lead to failures in sarcomere assembly, the building blocks of contracting muscles, resulting in cardiomyopathies that are a leading cause of morbidity and mortality worldwide. Splicing variants of sarcomeric proteins are crucial at different stages of myofibrillogenesis, accounting for sarcomeric structural integrity. RBM24 (RNA-binding motif protein 24) is known as a tissue-specific splicing regulator that plays an essential role in cardiogenesis. However, it had been unclear if the developmental stage-specific alternative splicing facilitated by RBM24 contributes to sarcomere assembly and cardiogenesis. Our aim is to study the molecular mechanism by which RBM24 regulates cardiogenesis and sarcomere assembly in a temporal-dependent manner. METHODS: We ablated RBM24 from human embryonic stem cells (hESCs) using CRISPR/Cas9 techniques. RESULTS: Although RBM24-/- hESCs still differentiated into sarcomere-hosting cardiomyocytes, they exhibited disrupted sarcomeric structures with punctate Z-lines due to impaired myosin replacement during early myofibrillogenesis. Transcriptomics revealed >4000 genes regulated by RBM24. Among them, core myofibrillogenesis proteins (eg, ACTN2 [α-actinin 2], TTN [titin], and MYH10 [non-muscle myosin IIB]) were misspliced. Consequently, MYH6 (muscle myosin II) cannot replace nonmuscle myosin MYH10, leading to myofibrillogenesis arrest at the early premyofibril stage and causing disrupted sarcomeres. Intriguingly, we found that the ABD (actin-binding domain; encoded by exon 6) of the Z-line anchor protein ACTN2 is predominantly excluded from early cardiac differentiation, whereas it is consistently included in human adult heart. CRISPR/Cas9-mediated deletion of exon 6 from ACTN2 in hESCs, as well as forced expression of full-length ACTN2 in RBM24-/- hESCs, further corroborated that inclusion of exon 6 is critical for sarcomere assembly. Overall, we have demonstrated that RBM24-facilitated inclusion of exon 6 in ACTN2 at distinct stages of cardiac differentiation is evolutionarily conserved and crucial to sarcomere assembly and integrity. CONCLUSIONS: RBM24 acts as a master regulator to modulate the temporal dynamics of core myofibrillogenesis genes and thereby orchestrates sarcomere organization.


Subject(s)
Alternative Splicing , Human Embryonic Stem Cells/metabolism , Muscle Development , Myocytes, Cardiac/metabolism , RNA-Binding Proteins/metabolism , Actinin/genetics , Actinin/metabolism , Cell Differentiation , Cell Line , Connectin/genetics , Connectin/metabolism , Human Embryonic Stem Cells/cytology , Humans , Myocytes, Cardiac/cytology , Myosin Heavy Chains/genetics , Myosin Heavy Chains/metabolism , Nonmuscle Myosin Type IIB/genetics , Nonmuscle Myosin Type IIB/metabolism , RNA-Binding Proteins/genetics
14.
J Cell Mol Med ; 25(24): 11142-11156, 2021 12.
Article in English | MEDLINE | ID: mdl-34738311

ABSTRACT

Somatic copy number alterations (CNAs) are a genomic hallmark of cancers. Among them, the chromosome 17p13.1 deletions are recurrent in hepatocellular carcinoma (HCC). Here, utilizing an integrative omics analysis, we screened out a novel tumour suppressor gene within 17p13.1, myosin heavy chain 10 (MYH10). We observed frequent deletions (~38%) and significant down-regulation of MYH10 in primary HCC tissues. Deletion or decreased expression of MYH10 was a potential indicator of poor outcomes in HCC patients. Knockdown of MYH10 significantly promotes HCC cell migration and invasion in vitro, and overexpression of MYH10 exhibits opposite effects. Further, inhibition of MYH10 markedly potentiates HCC metastasis in vivo. We preliminarily elucidated the mechanism by which loss of MYH10 promotes HCC metastasis by facilitating EGFR pathway activation. In conclusion, our study suggests that MYH10, a candidate target gene for 17p13 deletion, acts as a tumour suppressor and may serve as a potential prognostic indicator for HCC patients.


Subject(s)
Carcinoma, Hepatocellular/etiology , Chromosome Deletion , Chromosomes, Human, Pair 17 , Gene Expression Regulation, Neoplastic , Liver Neoplasms/etiology , Myosin Heavy Chains/genetics , Nonmuscle Myosin Type IIB/genetics , Signal Transduction , Animals , Carcinoma, Hepatocellular/metabolism , Carcinoma, Hepatocellular/mortality , Carcinoma, Hepatocellular/pathology , Cell Line, Tumor , Cell Movement , Cell Proliferation , Computational Biology , Disease Models, Animal , Disease Susceptibility , ErbB Receptors/metabolism , Gene Expression Profiling , Gene Knockdown Techniques , Humans , Liver Neoplasms/metabolism , Liver Neoplasms/mortality , Liver Neoplasms/pathology , Mice , Prognosis , Xenograft Model Antitumor Assays
15.
J Cell Sci ; 134(23)2021 12 01.
Article in English | MEDLINE | ID: mdl-34730180

ABSTRACT

The mechanisms by which the mechanoresponsive actin crosslinking protein α-actinin-4 (ACTN4) regulates cell motility and invasiveness remain incompletely understood. Here, we show that, in addition to regulating protrusion dynamics and focal adhesion formation, ACTN4 transcriptionally regulates expression of non-muscle myosin IIB (NMM IIB; heavy chain encoded by MYH10), which is essential for mediating nuclear translocation during 3D invasion. We further show that an indirect association between ACTN4 and NMM IIA (heavy chain encoded by MYH9) mediated by a functional F-actin cytoskeleton is essential for retention of NMM IIA at the cell periphery and modulation of focal adhesion dynamics. A protrusion-dependent model of confined migration recapitulating experimental observations predicts a dependence of protrusion forces on the degree of confinement and on the ratio of nucleus to matrix stiffness. Together, our results suggest that ACTN4 is a master regulator of cancer invasion that regulates invasiveness by controlling NMM IIB expression and NMM IIA localization. This article has an associated First Person interview with the first author of the paper.


Subject(s)
Nonmuscle Myosin Type IIA , Actinin/genetics , Actins/genetics , Cell Movement/genetics , Humans , Myosin Heavy Chains , Nonmuscle Myosin Type IIA/genetics , Nonmuscle Myosin Type IIB/genetics
16.
Mol Vis ; 27: 494-505, 2021.
Article in English | MEDLINE | ID: mdl-34526757

ABSTRACT

Objective: Scleral remodeling plays a key role in axial elongation in myopia. The aim of the present study was to identify the proteomics changes and specific signaling networks to gain insight into the molecular basis of scleral remodeling in myopic eyes. Methods: Guinea pig form-deprivation myopia was induced with a translucent diffuser on a random eye for 4 weeks, while the other eye served as the contralateral control group. The axial length and refraction were measured at the beginning and end of the treatment. The proteins were extracted from the sclerae of each group and prepared for quantitative isobaric tags for relative and absolute quantification (iTRAQ) labeling combined with liquid chromatography-tandem mass spectrometry (LC-MS/MS) analysis. The coexpression networks and protein functions were analyzed using Gene Ontology (GO) and Ingenuity Pathway Analysis (IPA). Quantitative real-time PCR (qRT-PCR) and western blotting were performed to confirm the authenticity and accuracy of the iTRAQ results. Results: After 4 weeks, the form-deprivation eyes developed significant degrees of myopia, and the axial length increased statistically significantly (p<0.05). A total of 2,579 unique proteins with <1% false discovery rate (FDR) were identified. Furthermore, 56 proteins were found to be upregulated, and 84 proteins were found to be downregulated, with a threshold of a 1.2-fold change and p<0.05 in the myopia group, when compared to the control group. Further bioinformatics analysis indicated that 44 of 140 differentially expressed proteins were involved in cellular movement and cellular assembly and organization. The qRT-PCR or western blotting results confirmed that myosin IIB, ACTIN3, and cellular cytoskeletons were downregulated, while RhoA and RAP1A were upregulated in the sclera in myopic eyes. These results were consistent with the proteomics results. Conclusions: Proteomics and bioinformatics results can be helpful for identifying proteins and providing new insights for better understanding of the molecular mechanism underlying scleral remodeling. These results revealed that the proteins associated with cellular movement and cellular assembly and organization are altered during the development of myopia. Furthermore, RhoA plays a key role in the pathways involved in cellular movement and cellular assembly and organization.


Subject(s)
Cytoskeletal Proteins/metabolism , GTP-Binding Proteins/metabolism , Myopia/metabolism , Proteome/metabolism , Proteomics/methods , Sclera/metabolism , Actins/metabolism , Animals , Blotting, Western , Chromatography, Liquid , Computational Biology , Disease Models, Animal , Gene Ontology , Guinea Pigs , Nonmuscle Myosin Type IIB/metabolism , Real-Time Polymerase Chain Reaction , Sensory Deprivation , Tandem Mass Spectrometry , rap1 GTP-Binding Proteins/metabolism , rhoA GTP-Binding Protein/metabolism
17.
Elife ; 102021 08 10.
Article in English | MEDLINE | ID: mdl-34374341

ABSTRACT

Nonmuscle myosin II (NM II) is an integral part of essential cellular processes, including adhesion and migration. Mammalian cells express up to three isoforms termed NM IIA, B, and C. We used U2OS cells to create CRISPR/Cas9-based knockouts of all three isoforms and analyzed the phenotypes on homogenously coated surfaces, in collagen gels, and on micropatterned substrates. In contrast to homogenously coated surfaces, a structured environment supports a cellular phenotype with invaginated actin arcs even in the absence of NM IIA-induced contractility. A quantitative shape analysis of cells on micropatterns combined with a scale-bridging mathematical model reveals that NM IIA is essential to build up cellular tension during initial stages of force generation, while NM IIB is necessary to elastically stabilize NM IIA-generated tension. A dynamic cell stretch/release experiment in a three-dimensional scaffold confirms these conclusions and in addition reveals a novel role for NM IIC, namely the ability to establish tensional homeostasis.


Subject(s)
Elasticity , Myosin Type II/metabolism , Nonmuscle Myosin Type IIA/metabolism , Nonmuscle Myosin Type IIB/metabolism , CRISPR-Cas Systems , Cell Line, Tumor , Cell Movement/physiology , Homeostasis , Humans , Models, Theoretical , Myosin Type II/classification , Myosin Type II/genetics , Nonmuscle Myosin Type IIA/genetics , Nonmuscle Myosin Type IIB/genetics , Protein Isoforms
18.
J Thromb Haemost ; 19(9): 2287-2301, 2021 09.
Article in English | MEDLINE | ID: mdl-34060193

ABSTRACT

BACKGROUND: GATA1 is an essential transcription factor for both polyploidization and megakaryocyte (MK) differentiation. The polyploidization defect observed in GATA1 variant carriers is not well understood. OBJECTIVE: To extensively phenotype two pedigrees displaying different variants in the GATA1 gene and determine if GATA1 controls MYH10 expression levels, a key modulator of MK polyploidization. METHOD: A total of 146 unrelated propositi with constitutional thrombocytopenia were screened on a multigene panel. We described the genotype-phenotype correlation in GATA1 variant carriers and investigated the effect of these novel variants on MYH10 transcription using luciferase constructs. RESULTS: The clinical profile associated with the p.L268M variant localized in the C terminal zinc finger was unusual in that the patient displayed bleeding and severe platelet aggregation defects without early-onset thrombocytopenia. p.N206I localized in the N terminal zinc finger was associated, on the other hand, with severe thrombocytopenia (15G/L) in early life. High MYH10 levels were evidenced in platelets of GATA1 variant carriers. Analysis of MKs anti-GATA1 chromatin immunoprecipitation-sequencing data revealed two GATA1 binding sites, located in the 3' untranslated region and in intron 8 of the MYH10 gene. Luciferase reporter assays showed their respective role in the regulation of MYH10 gene expression. Both GATA1 variants significantly alter intron 8 driven MYH10 transcription. CONCLUSION: The discovery of an association between MYH10 and GATA1 is a novel one. Overall, this study suggests that impaired MYH10 silencing via an intronic regulatory element is the most likely cause of GATA1-related polyploidization defect.


Subject(s)
GATA1 Transcription Factor , Megakaryocytes , Myosin Heavy Chains/genetics , Nonmuscle Myosin Type IIB/genetics , Thrombocytopenia , Blood Platelets , GATA1 Transcription Factor/genetics , Gene Silencing , Humans , Thrombocytopenia/genetics , Thrombopoiesis/genetics , Transcription Factors
19.
Elife ; 102021 04 19.
Article in English | MEDLINE | ID: mdl-33871354

ABSTRACT

During the first days of mammalian development, the embryo forms the blastocyst, the structure responsible for implanting the mammalian embryo. Consisting of an epithelium enveloping the pluripotent inner cell mass and a fluid-filled lumen, the blastocyst results from a series of cleavage divisions, morphogenetic movements, and lineage specification. Recent studies have identified the essential role of actomyosin contractility in driving cytokinesis, morphogenesis, and fate specification, leading to the formation of the blastocyst. However, the preimplantation development of contractility mutants has not been characterized. Here, we generated single and double maternal-zygotic mutants of non-muscle myosin II heavy chains (NMHCs) to characterize them with multiscale imaging. We found that Myh9 (NMHC II-A) is the major NMHC during preimplantation development as its maternal-zygotic loss causes failed cytokinesis, increased duration of the cell cycle, weaker embryo compaction, and reduced differentiation, whereas Myh10 (NMHC II-B) maternal-zygotic loss is much less severe. Double maternal-zygotic mutants for Myh9 and Myh10 show a much stronger phenotype, failing most of the attempts of cytokinesis. We found that morphogenesis and fate specification are affected but nevertheless carry on in a timely fashion, regardless of the impact of the mutations on cell number. Strikingly, even when all cell divisions fail, the resulting single-celled embryo can initiate trophectoderm differentiation and lumen formation by accumulating fluid in increasingly large vacuoles. Therefore, contractility mutants reveal that fluid accumulation is a cell-autonomous process and that the preimplantation program carries on independently of successful cell division.


Subject(s)
Blastocyst/metabolism , Cell Division , Mutation , Myosin Heavy Chains/genetics , Nonmuscle Myosin Type IIB/genetics , Animals , Cell Cycle , Cell Differentiation , Cytokinesis , Databases, Genetic , Embryo Culture Techniques , Female , Gene Expression Regulation, Developmental , Humans , Mice, Inbred C57BL , Mice, Transgenic , Microscopy, Video , Morphogenesis , Myosin Heavy Chains/metabolism , Nonmuscle Myosin Type IIB/metabolism , Time Factors , Time-Lapse Imaging
20.
Oncogene ; 40(19): 3434-3448, 2021 05.
Article in English | MEDLINE | ID: mdl-33888868

ABSTRACT

Extramedullary infiltration (EMI), as a concomitant symptom of acute myeloid leukemia (AML), is associated with low complete remission and poor prognosis in AML. However, the mechanism of EMI remains indistinct. Clinical trials showed that increased miR-29s were associated with a poor overall survival in AML [14]. Nevertheless, they were proved to work as tumor suppressor genes by encouraging apoptosis and inhibiting proliferation in vitro. These contradictory results led us to the hypothesis that miR-29s may play a notable role in the prognosis of AML rather than leukemogenesis. Thus, we explored the specimens of AML patients and addressed this issue into miR-29c&b2 knockout mice. As a result, a poor overall survival and invasive blast cells were observed in high miR-29c&b2-expression patients, and the wildtype mice presented a shorter survival with heavier leukemia infiltration in extramedullary organs. Subsequently, we found that the miR-29c&b2 inside leukemia cells promoted EMI, but not the one in the microenvironment. The analysis of signal pathway revealed that miR-29c&b2 could target HMG-box transcription factor 1 (Hbp1) directly, then reduced Hbp1 bound to the promoter of non-muscle myosin IIB (Myh10) as a transcript inhibitor. Thus, increased Myh10 encouraged the migration of leukemia cells. Accordingly, AML patients with EMI were confirmed to have high miR-29c&b2 and MYH10 with low HBP1. Therefore, we identify that miR-29c&b2 contribute to the poor prognosis of AML patients by promoting EMI, and related genes analyses are prospectively feasible in assessment of AML outcome.


Subject(s)
Leukemia, Myeloid, Acute/genetics , Leukemic Infiltration/genetics , Adult , Aged , Animals , Cell Line, Tumor , Computational Biology/methods , Databases, Genetic , Disease Models, Animal , Female , High Mobility Group Proteins/metabolism , Humans , Leukemia, Myeloid, Acute/metabolism , Leukemia, Myeloid, Acute/pathology , Leukemic Infiltration/metabolism , Leukemic Infiltration/pathology , Male , Mice , Mice, Knockout , MicroRNAs/genetics , MicroRNAs/metabolism , Middle Aged , Myosin Heavy Chains/metabolism , Nonmuscle Myosin Type IIB/metabolism , Prognosis , Repressor Proteins/metabolism , Survival Rate , Young Adult
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