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Vosahlikova, M.

Publications and source records attributed to Vosahlikova, M..

2 recordsLinked to original sources

HDAC6 and SSAT2 orchestrate acetyllysine metabolism and protein homeostasis

Lysine acetylation is a prevalent and dynamic posttranslational modification, yet the metabolic fate and physiological role of free N {varepsilon}-acetyl-L-lysine (AcK) remain unclear. Here, we identify opposing enzyme-catalyzed reactions linking lysine/AcK homeostasis to protein stability. We show that the first catalytic domain of HDAC6 stereospecifically deacetylates free AcK, establishing HDAC6 as an N {varepsilon}-acyl-lysine deacylase. AcK functions both as a recyclable lysine reservoir and as a signaling metabolite that elevates -tubulin acetylation and suppresses cell migration. Conversely, SSAT2 acetylates free lysine in cells and undergoes substrate-dependent C-terminal autoacetylation. We demonstrate that C-terminal lysine acetylation constitutes a reversible proteasomal degradation signal that promotes SSAT2 degradation and may extend to additional proteins bearing a terminal lysine. Stabilization of SSAT2 by HDAC6-dependent deacetylation, together with intricate regulation affected by substrate availability, reveals a novel mechanism that couples amino acid recycling to cytoskeletal dynamics and proteostasis.

biochemistry↗

Expanding the Tubulin Code: TTLL11 Polyglutamylase Drives Elongation of Primary Tubulin Chains

Microtubules (MTs) undergo diverse post-translational modifications that regulate their structural and functional properties. Among these, polyglutamylation - a dominant and conserved modification targeting the unstructured tubulin C-terminal tails - plays a pivotal role in defining the tubulin code. Here, we uncovered a novel mechanism by which tubulin tyrosine ligase-like 11 (TTLL11) expands and diversifies the code. Cryo-electron microscopy revealed a unique bipartite MT recognition strategy wherein TTLL11s binding and catalytic domains engage adjacent MT protofilaments. Biochemical assays identified previously unknown polyglutamylation patterns, showing that TTLL11 directly extends the primary polypeptide chains of - and {beta}-tubulin, challenging the prevailing paradigms emphasizing lateral branching. Moreover, cell-based and in vivo data firmly established a crosstalk between TTLL11-mediated polyglutamylation and other tubulin-modifying processes, notably the detyrosination/tyrosination cycle. This discovery unveils an unrecognized layer of complexity within the tubulin code and offers new insights into the molecular basis of functional specialization of cytoskeleton across diverse cellular contexts.

biochemistry↗