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Callegari, S.

Publications and source records attributed to Callegari, S..

2 recordsLinked to original sources

Interaction of PINK1 with nucleotides and kinetin

PINK1 is a ubiquitin kinase that accumulates on damaged mitochondria to trigger mitophagy, and PINK1 loss-of-function mutations cause early onset Parkinsons disease. Nucleotide analogues such as kinetin triphosphate (KTP) have been suggested to enhance PINK1 activity and may represent a therapeutic strategy for the treatment of Parkinsons disease. Here, we investigate the interaction of PINK1 with nucleotides, including KTP. We establish a cryo-EM platform exploiting the previously observed dodecamer assembly of Pediculus humanus corporis (Ph) PINK1 to determine PINK1 structures bound to AMP-PNP and ADP, which reveal unexpected conformational changes in the kinase N-lobe to enable PINK1 to form a ubiquitin binding site. Strikingly, we find that KTP is unable to bind PhPINK1 or human (Hs) PINK1 due to a steric clash with the kinase gatekeeper residue. Mutation of the gatekeeper to Ala or Gly is required to enable PINK1 to bind and utilise KTP as a phosphate donor in ubiquitin phosphorylation and mitophagy. Indeed, HsPINK1 M318G can be used to conditionally uncouple PINK1 stabilisation and activity on mitochondria.

molecular biology↗

Ovarian carcinoma immunoreactive antigen-like protein 2 (OCIAD2) is a novel metazoan specific complex III assembly factor

Assembly of the dimeric complex III (CIII2) in the mitochondrial inner membrane is an intricate process in which many factors are involved. Despite many studies this process is yet to be completely understood. Here we report the identification of human OCIAD2 (Ovarian Carcinoma Immunoreactive Antigen domain containing protein 2) protein as an assembly factor for CIII2. OCIAD2 was found deregulated in several carcinomas and in some neurodegenerative disorders; however its non-pathological role was not elucidated to date. We have shown that OCIAD2 localizes to mitochondria and interacts with electron transport chain (ETC) proteins. Complete loss of OCIAD2 using gene editing in HEK293 cells resulted in abnormal mitochondrial morphology, decrease assembly of both CIII2 and supercomplex III2+IV and decreased activities of complex I and III. Identification of OCIAD2 as a protein required for assembly of functional CIII2 provides a new insight into the biogenesis and architecture of the ETC. Elucidating the mechanism of OCIAD2 action is important both for the understanding of cellular metabolism and for understanding of its role in the malignant transformation.

cell biology↗