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Biology subjects

Hilander, T.

Publications and source records attributed to Hilander, T..

2 recordsLinked to original sources

GTPBP8 is required for mitoribosomal biogenesis and mitochondrial translation

Mitochondria contain a multi-copy genome and a distinct set of ribosomes devoted to the exclusive synthesis of proteins that are essential for oxidative phosphorylation. The assembly of mitoribosomes for mitochondrial translation is a poorly understood process. In this study, we identify the uncharacterized GTP-binding protein 8 (GTPBP8) as a mitoribosomal assembly factor that specifically associates with the mitoribosomal large subunit. Genetic depletion of GTPBP8 causes an aberrant accumulation of the large mitoribosomal subunit at a late assembly stage and reduces the level of fully assembled 55S mitoribosomes, resulting in impaired mitochondrial translation and function. Together, our findings uncover an important role for human GTPBP8 in the processes of mitoribosomal assembly and mitochondrial translation. Key pointsO_LIGTPBP8 is a novel GTPase residing in the matrix peripherally bound to the inner mitochondrial membrane C_LIO_LIGTPBP8 specifically associates with the large mitoribosome subunit through interactions with large mitoribosomal proteins assembled at late stages. C_LIO_LIGTPBP is essential for maturation of the mitoribosomal large subunit and monosome formation C_LI

cell biology↗

Supernumerary proteins of the human mitochondrial ribosomal small subunit are integral for assembly and translation

Mitochondrial ribosomes (mitoribosomes) have undergone substantial structural remodelling throughout evolution. Compared to their prokaryotic counterparts, mitoribosomes show a substantial loss of ribosomal RNA, whilst acquiring unique protein subunits located on the periphery of the ribosomal subunit structures. We set out to investigate the functional properties of all 14 unique (mitochondrial-specific or supernumerary) human mitoribosomal proteins in the small subunit. Using genome editing with CRISPR-Cas9, we made knockouts for each subunit in HEK293 cells to study the effect on mitoribosome assembly and function in protein synthesis. Unexpectedly, we show that each supernumerary knockout leads to a unique mitoribosome assembly defect with variable impact on mitochondrial protein synthesis. Our data demonstrates that all supernumerary subunits are essential structural components except mS37. Surprisingly, we found the stability of mS37 was reduced in all our supernumerary knockouts of the small and large ribosomal subunits as well as patient-derived lines with mitoribosome assembly defects. We identified that a redox regulated CX9C motif in mS37 was essential for protein stability, suggesting a potential mechanism to regulate mitochondrial protein synthesis. Together, our findings support a modular assembly of the human mitochondrial small ribosomal subunit mediated by essential supernumerary subunits and identify a redox regulatory role involving mS37 in mitochondrial protein synthesis in health and disease.

molecular biology↗