The expression of metazoan replication-dependent histone genes is controlled by NPAT and U7 snRNP. NPAT activates transcription of histone genes during S-phase, whereas U7 snRNP is a multi-subunit endonuclease that cleaves the resultant transcripts at the 3' end, yielding mature histone mRNAs. In cycling cells, NPAT and U7 snRNP with its four unique components, U7 snRNA, Lsm10, Lsm11 and FLASH, are highly enriched in Histone Locus Bodies (HLBs), nuclear condensates formed near histone gene loci. Here, we show that in muscle and neural cells that have ceased to replicate their chromatin and permanently exited the cell cycle, HLBs are dismantled and NPAT, FLASH and Lsm11 are detected in the cytoplasm. This observation suggests that in postmitotic cells, NPAT and U7 snRNP become repurposed for functions unrelated to generating histone mRNAs. We identified a highly conserved region in Lsm11 that engages in various protein-protein interactions and likely acts as a universal platform that controls the assembly, localization and function of Lsm11 complexes, including U7 snRNP, during cell growth and differentiation. Since the assembly of U7 snRNP requires SMN, the protein mutated in spinal muscular atrophy (SMA), our results may provide a new perspective on pathophysiology of this neuromuscular disorder.
Xiao-cui Yang, Anthony Desotell, Agata Malinowska et al.· Biology Open· 0 citations
The functions of many human proteins remain unknown, highlighting major gaps in our understanding of cellular biology. TTC33 is an evolutionarily conserved tetratricopeptide repeat (TPR) protein expressed across human tissues, whose molecular role is not defined. Here we identify the TTC33 partners using comparative label-free mass spectrometry. The TTC33-associated network (TAN) comprises WDR61, CCDC97, UNG1/2, PP2A-B55α, PHF5A, and components of the SF3B U2 spliceosomal complex. Using a combination of biochemical assays, structural modeling and molecular dynamics we show that TTC33 directly recruits WDR61 and PHF5A to assemble into a trimeric core complex (TANC), which then forms distinct interactions with either UNG1/2 or SF3B–CCDC97. Somatic TTC33 mutations at key TANC interface residues reduce complex stability and weaken the interaction network. We further show that WDR61 stabilizes TTC33 by protecting it from proteolytic degradation. Loss of network components induces genomic instability and activates DNA damage markers, including γH2AX and p53 phosphorylation.
R. Tomecki, Małgorzata Drabko, Małgorzata Siek et al.· Nature Communications· 0 citations