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Gregorio, C. C.

Publications and source records attributed to Gregorio, C. C..

2 recordsLinked to original sources

Structure of the Leiomodin-2 Regulated Actin Filament Pointed End Assembly from Profilactin

Cardiac contraction depends on synchronized interactions between myosin-based thick filaments and actin-based thin filaments (TFs). Precise regulation of TFs length is vital for cardiac function, as any alteration in length leads to severe myopathies. Actin filaments form the backbone of the TF and have two unequal ends - fast-growing barbed and slow-growing pointed. In muscle, the barbed end is capped at the Z-line, while the pointed end is regulated by the tropomodulin family of proteins. Tropomodulin caps the pointed end, while leiomodin-2 (Lmod2) promotes actin nucleation and pointed end elongation. Lmod2 has a unique C-terminal extension (CTE) that is important for actin nucleation and binds to the sides of matured TFs. The structural mechanism by which Lmod2 promotes elongation remains elusive. We employed cryo-electron microscopy to visualize the structure of growing pointed ends nucleated by Lmod2 from profilactin. We show that Lmod2s leucine-rich repeat domain (LRR) stabilizes terminal actin subunits by binding across the helical groove of actin. We identified two distinct populations of pointed-end LRR-containing complexes on one or both actin strands. LRR binding pushes the terminal actins outward from their ideal positions in the actin filament, introducing strain at the pointed end that squeezes LRR from the filaments exterior. We also show that the Lmod2 CTE may stabilize Lmod2 binding to the pointed end. We suggest that Lmod2 promotes the addition of new actins to the pointed end but is expelled from the growing filament, thereby maintaining the concentration of Lmod2 required for further elongation.

biophysics↗

Leiomodin 2 functions as a processive pointed-end elongator of actin filaments

The actin cytoskeleton drives essential processes like cell migration and muscle contraction. While barbed-end polymerization is well-established, pointed-end elongation was long considered impossible in vivo. Here, we demonstrate that Leiomodin 2 (Lmod2), which localizes to thin-filament pointed ends (PEs) in striated muscle cells, functions as the first identified eukaryotic processive actin polymerase. Single-molecule and single-filament imaging reveal that Lmod2 stably associates with PEs in vitro, enabling elongation even in the presence of high profilin concentrations found in the cytoplasm that otherwise would cause depolymerization of free PEs. We find that both processivity and elongation rate of Lmod are dependent on its WH2 domain. Remarkably, human dilated cardiomyopathy-associated mutations in Lmod2 greatly reduce Lmod2s PE elongation activity, providing a potential mechanism for disease progression, underscoring the essential role of its actin polymerase activity in formation and maintenance of muscle sarcomeres.

biochemistry↗