PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 8, 2026Circulation Research0 citations

N-Terminal Actin-Binding Site of Lmod2 Promotes Controlled Pointed End Elongation

TLTania M. LarrinagaGSGarry E. SmithDTDmitri Tolkatchev

Key Result

Disrupting Lmod2's N-terminal actin-binding site caused longer thin filaments in cardiomyocytes and mice, revealing Lmod2's role in controlled pointed end elongation.

Key Points

  • This study aims to clarify the role of the N-terminal actin-binding site (ABS1) of Lmod2 in thin filament elongation.
  • Created a Lmod2 quadruple mutant to decrease ABS1 actin binding
  • Conducted in vitro, cellular, and in vivo assays to analyze effects
  • Performed structural analysis of ABS1 interactions with actin
  • Mutations led to longer thin filaments in isolated cardiomyocytes and engineered mice
  • Structural analysis showed ABS1 binds to actin via a disordered region and an amphipathic α-helix
  • ABS1 binding is impaired when the α-helix is destroyed, but some interaction persists through the disordered region

Structured PICO

P
Population
Isolated neonatal mouse cardiomyocytes (Lmod2 wild-type and knockout) and Lmod2 knockout mice
I
Intervention
Lmod2-quadruple mutant (F64D/L69D/W72D/W73D) expressed via adenovirus transduction
C
Comparator
GFP alone or unmutated GFP-Lmod2 (wild-type)
O
Outcome
Thin filament length and pointed end elongationsurrogate

Disrupting the interaction of Lmod2 ABS1 with actin creates a 'super Lmod2' that results in remarkably longer thin filaments, demonstrating its physiological leaky cap activity.

Abstract

BACKGROUND: Lmods (leiomodins) are critical for the assembly and maintenance of thin filaments in striated muscles by allowing thin filament elongation at the pointed ends. Lmod2’s elongation function has been linked to both actin-binding sites (ABSs) 2 and 3, while the existence and function of an N-terminal ABS1 has been debated. METHODS: To elucidate the little-known role of Lmod2’s ABS1, we created a mutant (F64D/L69D/W72D/W73D: Lmod2-quadruple mutant) predicted to decrease the binding of ABS1 to actin. We analyzed the effect of the mutations using several in vitro, cellular, and in vivo assays. RESULTS: By disrupting the interaction of Lmod2 ABS1 with actin in isolated cardiomyocytes and in mice, we engineered a super Lmod2 that results in remarkably longer thin filaments. Structural analysis determined that ABS1 of Lmod2 binds to actin through a disordered region and an amphipathic α-helix. Analysis of the mutated ABS1 revealed that the helix is destroyed, and binding to actin is maintained only in the N-terminal disordered region of Lmod2 ABS1. CONCLUSIONS: These discoveries support a model of controlled thin filament pointed end elongation by Lmod2 and provide the first direct evidence of, as well as the structural and functional mechanistic basis for, Lmod2’s physiological leaky cap activity.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Larrinaga et al. (2026) studied this question. Disrupting Lmod2's N-terminal actin-binding site caused longer thin filaments in cardiomyocytes and mice, revealing Lmod2's role in controlled pointed end elongation.

synapsesocial.com/papers/698828410fc35cd7a8847a57https://doi.org/10.1161/circresaha.125.327013
Ask AI
Helpful
Bookmark
Share
View Full Paper