Authors
Shomali, T., Veyron, S., Trempe, J.-F.
Abstract
PTEN-induced kinase 1 (PINK1) is a mitochondrial serine/threonine kinase that initiates ubiquitin-dependent mitophagy and is mutated in early-onset Parkinson's disease. Despite extensive characterization of insect PINK1 orthologues, obtaining soluble and catalytically active recombinant Homo sapiens PINK1 (HsPINK1) has remained challenging, limiting its biochemical and structural investigation. Here, we identify an evolutionary divergence in the mechanisms supporting PINK1 stability and activity. Comparative analysis of 48 metazoan PINK1 orthologues revealed that predicted binding to the mitochondrial import receptor TOM20 is predominantly a vertebrate feature and coincides with divergence of the PINK1 N- and C-terminal extensions (NTE and CTE). Consistent with this distinction, invertebrate PINK1 orthologues were purified as active kinases, whereas vertebrate orthologues lacked detectable ubiquitin kinase activity. NMR spectroscopy demonstrated that humanization of ten residues within the Tribolium castaneum (Tc)PINK1 NTE-CTE interface is sufficient to confer direct binding to human TOM20, while co-expression with TOM20 increased the activity of recombinant HsPINK1. Guided by these evolutionary differences, we engineered a chimeric PINK1 containing a predominantly human kinase domain supported by Tc-derived NTE-CTE elements. The resulting kinase was catalytically active and required compatible interactions between the NTE-CTE and kinase C-lobe for activity. The chimera enabled characterization of PINK1 variants and revealed R152W as a likely pathogenic variant. Together, our findings support a model in which the NTE and CTE act as intramolecular determinants of PINK1 kinase stability and suggest that vertebrate PINK1 has evolved an increased dependence on the mitochondrial import machinery to maintain a functional state.
Preprint server:
bioRxiv
The authors list and abstract were imported from bioRxiv on 10 Sep 2026.
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