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Cizauskas, H.

Publications and source records attributed to Cizauskas, H..

2 recordsLinked to original sources

Missense variants in the myosin binding domains of MYBPC3 and MYBPHL impair sarcomere incorporation

Approximately 40% of genetic hypertrophic cardiomyopathy cases involve mutations in MYBPC3, which encodes cardiac myosin binding protein-C (cMyBP-C), a key regulator of sarcomere contractility. The atrial-specific paralog, myosin binding protein-H like (MyBP-HL), has been associated with dilated cardiomyopathy in humans and mice. Both proteins bind to the same binding sites in the thick filament C-zone. In the atria, cMyBP-C and MyBP-HL are found at [~]1:1 ratios, while ventricles only express cMyBP-C, which is found at twice the atrial level, indicating a stoichiometric relationship. In the atria, we hypothesize that missense variants in either gene may cause alterations in thick filament binding affinity and changes in the normal [~]1:1 ratio. Notably, MyBP-HL deletion in atrial myofibrils accelerates relaxation kinetics, suggesting that altered stoichiometry impacts biophysical parameters. We hypothesized that deletion, overexpression, or missense variants in either gene would alter the abundance of the other protein in atrial sarcomeres, affecting sarcomere localization and function. To test this, we engineered two constructs: a mini-C construct comprising thick filament-binding domains of cMyBP-C and a MyBP-HL construct. Selected MYBPC3 and MYBPHL missense variants were introduced and expressed in neonatal rat ventricular cardiomyocytes (NRVMs). Sarcomere localization was assessed by co-localization with endogenous cMyBP-C. MYBPC3 variants were selected across a range of pathogenicity, while MYBPHL variants were based on evolutionary conservation of residues. MYBPHL variants Gly275Ser, Arg285His, and Ala342Thr induced significant sarcomere mislocalization, and MYBPC3 variants Pro1181Ala and Asn1257Lys showed variable effects on sarcomere mislocalization. To assess stoichiometric effects, we developed a T2A/P2A polycistronic construct to co-express mini-C, Td-Tomato, and MyBP-HL. Immunoblotting and mass spectrometry confirmed consistent and reproducible expression. We identified several MYBPC3 and MYBPHL variants that reduced the affinity of their protein for myofilament incorporation. These results suggest that this 2A construct is a useful tool for measuring the effect of myosin binding protein missense variants on sarcomere affinity, with implications for assessing pathogenicity of these variants.

biochemistry↗

Proteolytic degradation of atrial sarcomere proteins underlies contractile defects in atrial fibrillation

(ii) ABSTRACTO_ST_ABSAimsC_ST_ABSAtrial fibrillation (AFib) is the most common cardiac rhythm disturbance. Treatment of AFib involves restoration of the atrial electrical rhythm. Following rhythm restoration, a period of depressed mechanical function known as atrial stunning occurs that involves decreased blood flow velocity and reduced atrial contractility. This suggests that defects in contractility occur in AFib and are revealed upon restoration of rhythm. The aim of this project is to define the contractile remodeling that occurs in AFib Methods and ResultsTo assess contractile function, we used a canine atrial tachypacing model of induced AFib. Mass spectrometry analysis showed dysregulation of contractile proteins in samples from AFib compared to sinus rhythm atria. Atrial cardiomyocytes showed reduced force of contraction in skinned single cardiomyocyte calcium-force studies. There were no significant differences in myosin heavy chain isoform expression. Resting tension is decreased in the AFib samples correlating with reduced full-length titin in the sarcomere. We measured degradation of other myofilament proteins including cMyBP-C, actinin, and cTnI, showing significant degradation in the AFib samples compared to sinus rhythm atria. Many of the protein degradation products appeared as discrete cleavage products that are generated by calpain proteolysis. We assessed calpain activity and found it to be significantly increased. Skinned cardiomyocytes from AFib atria showed decreased troponin I phosphorylation, consistent with the increased calcium sensitivity that was found within these cardiomyocytes. ConclusionsWith these results it can be concluded that AFib causes alterations in contraction that can be explained by both molecular changes occurring in myofilament proteins and overall myofilament protein degradation. These results provide an understanding of the contractile remodeling that occurs in AFib and provides insight into the molecular explanation for atrial stunning and the increased risk of atrial thrombus and stroke in AFib.

cell biology↗