Mapping cellular response to destabilized transthyretin reveals cell- and amyloidogenic protein-specific signatures

Sabrina Ghosh1,2, Carlos Villacorta-Martin1, Jonathan Lindstrom-Vautrin1

  • 1Center for Regenerative Medicine, Boston University School of Medicine, Boston, MA, USA.

Abstract

Insights

This study reveals distinct cellular responses to misfolded transthyretin (TTR) variants in neuronal and cardiac cells. Tafamidis treatment reversed chromatin changes in cardiac cells, offering insights into ATTR amyloidosis mechanisms.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Genomics

Background:

  • ATTR amyloidosis involves toxic aggregation of transthyretin (TTR) protein.
  • Mechanisms of TTR-mediated cellular damage are not fully understood.
  • Existing treatments for ATTR amyloidosis do not fully address underlying cellular damage.

Purpose of the Study:

  • To define early cellular stress events caused by TTR.
  • To compare cellular responses to different amyloidogenic proteins and stressors.
  • To investigate epigenetic changes in response to mutant TTR.

Main Methods:

  • Neuronal (SH-SY5Y) and cardiac (AC16) cells were exposed to wild-type and mutant TTR variants (TTRV122I, TTRL55P).
  • Transcriptional (RNAseq) and epigenetic (ATACseq) profiling were performed.
  • Responses were compared to AL amyloidosis proteins and ER stressors (thapsigargin, heat shock).

Main Results:

  • Overlapping yet distinct cell type- and protein-specific transcriptional signatures were observed.
  • Mutant TTR induced chromatin-level changes in cardiac cells.
  • These chromatin changes were reversed by tafamidis pre-incubation.

Conclusions:

  • Cellular responses to amyloidogenic proteins are unique and context-dependent.
  • Epigenetic modifications play a role in TTR-mediated cellular damage.
  • Tafamidis demonstrates potential in mitigating TTR-induced cellular stress.

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