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Hovhannisyan, G. G.

Publications and source records attributed to Hovhannisyan, G. G..

4 recordsLinked to original sources

PTPRF is a stress responsive cytoskeletal checkpoint that coordinates metabolic adaptation in hepatocytes and β cells

Cytoskeletal remodeling is essential for adaptation to nutrient availability, yet how cells coordinate actin dynamics with glucose homeostasis in metabolic organs remains unclear. Here, we identify a pathway linking metabolic stress to actin reorganization in hepatocytes and pancreatic {beta} cells. This mechanism involves transcriptional repression of the receptor protein tyrosine phosphatase PTPRF by spliced XBP1, a key unfolded protein response factor. In hepatocytes, PTPRF loss under dietary stress enhances insulin signaling, increases mitochondrial respiration and reduces steatosis. Proteomic analyses show that PTPRF interacts with regulators of actin polymerization and cell junctions, and its deletion promotes actin filament organization, shifting metabolism toward oxidative pathways. In {beta} cells, PTPRF deficiency similarly enhances actin polymerization and augments glucose-stimulated insulin secretion in obesity. Collectively, these findings place PTPRF as a nutrient-responsive regulator of cytoskeletal remodeling that coordinates hepatic metabolism and {beta}-cell function, highlighting its potential as a therapeutic target for improving systemic glucose control.

physiology↗

Loss of PTPRK in hepatocytes reduces steatosis and carcinogen-induced tumour development in obesity

Protein tyrosine phosphatases are crucial regulators of metabolism with specific roles in different tissues. To investigate hepatocyte-specific function of protein tyrosine phosphatase receptor type K (PTPRK), we generated mice carrying floxed Ptprk alleles and crossed them with Alb-Cre mice (Ptprk{Delta}Hep mice). Under chow feeding, Ptprk{Delta}Hepmice were largely comparable to littermate controls. In contrast, Ptprk{Delta}Hepmice fed a high-fat, high-fructose, high-cholesterol diet exhibited reduced steatosis, lower hepatic PPAR{gamma}, and blunted hepatocyte hypertrophy, accompanied by improved systemic insulin sensitivity, as assessed by hyperinsulinemic-euglycemic clamps. We identified PTPRK-interacting proteins enriched for metabolic functions associated with glycolysis and lipid biosynthesis using pull downs from primary hepatocyte lysates. In line with these findings, Ptprk{Delta}Hep mice developed fewer tumours than controls in an obesity and carcinogen-induced hepatocellular carcinoma (HCC) model. Our data show that under nutrient excess PTPRK is functionally engaged in hepatocytes to support PPAR{gamma}-linked steatotic growth, insulin resistance, and tumour initiation, highlighting PTPRK as a potential therapeutic target in MASLD-associated HCC.

pathology↗

CellCousin2: An Optimized System for Partial Ablation and Tracing of Regenerative Lineages

Regeneration can rely on multiple cellular sources, including stem cells, self-duplicating cells, and transdifferentiating cells. A central question in regenerative biology is how these distinct lineages contribute to repair and interact within a functional regenerate. We previously developed the CellCousin system to study hcellular plasticity using inducible recombination and nitroreductase-mediated ablation in zebrafish. Here, we present CellCousin2, which introduces two key improvements for long-term tracking of spared and regenerating cells. First, to reduce background recombination, we developed a Dihydrofolate Reductase (DHFR)-CreER system with dual control: DHFR- mediated degradation in the absence of trimethoprim, and tamoxifen-dependent activation. This combination minimizes leakiness while maintaining high recombination efficiency. Second, we replaced the original nitroreductase with NTR2.0, enabling effective ablation with tenfold lower metronidazole concentration, reducing off-target effects on the liver. Together, these enhancements make CellCousin2 a robust platform for dissecting the dynamics and interactions of regenerative lineages.

developmental biology↗

Cholangiocytes contribute to hepatocyte regeneration after partial liver injury during growth spurt in zebrafish

The livers regenerative ability depends on injury extent. Minor injuries are repaired by hepatocyte self-duplication, while severe damage triggers cholangiocyte involvement in hepatocyte recovery. This paradigm is well-documented for adult animals but is less explored during rapid growth. We design two new partial liver injury models in zebrafish, which were investigated during growth spurts: 1) partial ablation, killing half the hepatocytes; and 2) partial hepatectomy, removing half a liver lobe. In both injuries, de novo hepatocytes emerged alongside existing ones. Single-cell transcriptomics and lineage tracing with Cre-driver lines generated by genome editing identified cholangiocytes as the source of de novo hepatocytes. We further identify active mTORC1 signalling in the uninjured liver of growing animal to be a regulator of the enhanced plasticity of cholangiocytes. Our study suggests cholangiocyte-to-hepatocyte transdifferentiation as the primary mechanism of liver regeneration during periods of rapid growth.

developmental biology↗