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1.
Elife ; 112022 05 03.
Artigo em Inglês | MEDLINE | ID: mdl-35502901

RESUMO

Phosphorylation and acetylation of sarcomeric proteins are important for fine-tuning myocardial contractility. Here, we used bottom-up proteomics and label-free quantification to identify novel post-translational modifications (PTMs) on ß-myosin heavy chain (ß-MHC) in normal and failing human heart tissues. We report six acetylated lysines and two phosphorylated residues: K34-Ac, K58-Ac, S210-P, K213-Ac, T215-P, K429-Ac, K951-Ac, and K1195-Ac. K951-Ac was significantly reduced in both ischemic and nonischemic failing hearts compared to nondiseased hearts. Molecular dynamics (MD) simulations show that K951-Ac may impact stability of thick filament tail interactions and ultimately myosin head positioning. K58-Ac altered the solvent-exposed SH3 domain surface - known for protein-protein interactions - but did not appreciably change motor domain conformation or dynamics under conditions studied. Together, K213-Ac/T215-P altered loop 1's structure and dynamics - known to regulate ADP-release, ATPase activity, and sliding velocity. Our study suggests that ß-MHC acetylation levels may be influenced more by the PTM location than the type of heart disease since less protected acetylation sites are reduced in both heart failure groups. Additionally, these PTMs have potential to modulate interactions between ß-MHC and other regulatory sarcomeric proteins, ADP-release rate of myosin, flexibility of the S2 region, and cardiac myofilament contractility in normal and failing hearts.


Assuntos
Cadeias Pesadas de Miosina , Sarcômeros , Difosfato de Adenosina/metabolismo , Humanos , Miocárdio/metabolismo , Cadeias Pesadas de Miosina/metabolismo , Miosinas/metabolismo , Processamento de Proteína Pós-Traducional , Sarcômeros/metabolismo , Fatores de Transcrição/metabolismo
2.
Adv Med Sci ; 66(1): 52-71, 2021 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-33387942

RESUMO

The dystrophin-glycoprotein complex (DGC), situated at the sarcolemma dynamically remodels during cardiac disease. This review examines DGC remodeling as a common denominator in diseases affecting heart function and health. Dystrophin and the DGC serve as broad cytoskeletal integrators that are critical for maintaining stability of muscle membranes. The presence of pathogenic variants in genes encoding proteins of the DGC can cause absence of the protein and/or alterations in other complex members leading to muscular dystrophies. Targeted studies have allowed the individual functions of affected proteins to be defined. The DGC has demonstrated its dynamic function, remodeling under a number of conditions that stress the heart. Beyond genetic causes, pathogenic processes also impinge on the DGC, causing alterations in the abundance of dystrophin and associated proteins during cardiac insult such as ischemia-reperfusion injury, mechanical unloading, and myocarditis. When considering new therapeutic strategies, it is important to assess DGC remodeling as a common factor in various heart diseases. The DGC connects the internal F-actin-based cytoskeleton to laminin-211 of the extracellular space, playing an important role in the transmission of mechanical force to the extracellular matrix. The essential functions of dystrophin and the DGC have been long recognized. DGC based therapeutic approaches have been primarily focused on muscular dystrophies, however it may be a beneficial target in a number of disorders that affect the heart. This review provides an account of what we now know, and discusses how this knowledge can benefit persistent health conditions in the clinic.


Assuntos
Proteínas Associadas à Distrofina/metabolismo , Distrofina/metabolismo , Cardiopatias/patologia , Glicoproteínas de Membrana/metabolismo , Distrofias Musculares/patologia , Animais , Cardiopatias/classificação , Cardiopatias/metabolismo , Humanos , Distrofias Musculares/metabolismo
3.
J Vis Exp ; (160)2020 06 17.
Artigo em Inglês | MEDLINE | ID: mdl-32628176

RESUMO

We describe the implementation of spinal cord injury in mice to elicit detrusor-sphincter dyssynergia, a functional bladder outlet obstruction, and subsequent bladder wall remodeling. To facilitate assessment of the cellular composition of the bladder wall in non-injured control and spinal cord injured mice, we developed an optimized dissociation protocol that supports high cell viability and enables the detection of discrete subpopulations by flow cytometry. Spinal cord injury is created by complete transection of the thoracic spinal cord. At the time of tissue harvest, the animal is perfused with phosphate-buffered saline under deep anesthesia and bladders are harvested into Tyrode's buffer. Tissues are minced prior to incubation in digestion buffer that has been optimized based on the collagen content of mouse bladder as determined by interrogation of publicly available gene expression databases. Following generation of a single cell suspension, material is analyzed by flow cytometry for assessment of cell viability, cell number and specific subpopulations. We demonstrate that the method yields cell populations with greater than 90% viability, and robust representation of cells of mesenchymal and epithelial origin. This method will enable accurate downstream analysis of discrete cell types in mouse bladder and potentially other organs.


Assuntos
Separação Celular/métodos , Traumatismos da Medula Espinal/patologia , Bexiga Urinária/patologia , Animais , Calibragem , Sobrevivência Celular , Análise de Dados , Matriz Extracelular/metabolismo , Feminino , Citometria de Fluxo , Camundongos , Perfusão , Traumatismos da Medula Espinal/cirurgia , Transcriptoma/genética
4.
Am J Physiol Renal Physiol ; 318(4): F901-F910, 2020 04 01.
Artigo em Inglês | MEDLINE | ID: mdl-32116016

RESUMO

The signaling pathways and effectors that drive the response of the bladder to nonmalignant insults or injury are incompletely defined. Interrogation of biological systems has been revolutionized by the ability to generate high-content data sets that capture information on a variety of biomolecules in cells and tissues, from DNA to RNA to proteins. In oncology, such an approach has led to the identification of cancer subtypes, improved prognostic capability, and has provided a basis for precision treatment of patients. In contrast, systematic molecular characterization of benign bladder disorders has lagged behind, such that our ability to uncover novel therapeutic interventions or increase our mechanistic understanding of such conditions is limited. Here, we discuss existing literature on the application of omics approaches, including transcriptomics and proteomics, to urinary tract conditions characterized by pathological tissue remodeling. We discuss molecular pathways implicated in remodeling, challenges in the field, and aspirations for omics-based research in the future.


Assuntos
Genômica , Análise de Célula Única , Biologia de Sistemas , Doenças da Bexiga Urinária/genética , Doenças da Bexiga Urinária/metabolismo , Bexiga Urinária/metabolismo , Animais , Epigênese Genética , Epigenômica , Perfilação da Expressão Gênica , Redes Reguladoras de Genes , Predisposição Genética para Doença , Humanos , Fenótipo , Proteômica , Transcriptoma , Bexiga Urinária/patologia , Bexiga Urinária/fisiopatologia , Doenças da Bexiga Urinária/patologia , Doenças da Bexiga Urinária/fisiopatologia
5.
Genes (Basel) ; 8(4)2017 Apr 06.
Artigo em Inglês | MEDLINE | ID: mdl-28383499

RESUMO

The replicative helicase unwinds parental double-stranded DNA at a replication fork to provide single-stranded DNA templates for the replicative polymerases. In eukaryotes, the replicative helicase is composed of the Cdc45 protein, the heterohexameric ring-shaped Mcm2-7 complex, and the tetrameric GINS complex (CMG). The CMG proteins bind directly to DNA, as demonstrated by experiments with purified proteins. The mechanism and function of these DNA-protein interactions are presently being investigated, and a number of important discoveries relating to how the helicase proteins interact with DNA have been reported recently. While some of the protein-DNA interactions directly relate to the unwinding function of the enzyme complex, other protein-DNA interactions may be important for minichromosome maintenance (MCM) loading, origin melting or replication stress. This review describes our current understanding of how the eukaryotic replicative helicase subunits interact with DNA structures in vitro, and proposed models for the in vivo functions of replicative helicase-DNA interactions are also described.

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