Search bioRxiv⌕ Search

Biology subjects

Niemi, N.

Publications and source records attributed to Niemi, N..

3 recordsLinked to original sources

Cross-species Study of Canine and Human Peripheral Nerve Sheath Tumors: Clinical and Molecular Perspectives

Malignant peripheral nerve sheath tumors (MPNSTs) are aggressive sarcomas. An obstacle to treating MPNSTs is a lack of effective systemic therapies. Although over 70% of human MPNSTs have lost or inactivated the epigenome regulator polycomb repressive complex 2 (PRC2), its activity and contribution to canine PNST progression remain unclear. This study compared canine peripheral nerve sheath tumors (PNSTs) and human MPNSTs across biological and clinical features, including PRC2 activity. Immunohistochemical analysis was performed for a human tissue microarray of 54 neurofibromas and 139 MPNSTs, and 63 canine PNSTs for H3K27me3, a repressive histone mark deposited by intact PRC2, and H3K27ac, which increases globally upon H3K27me3 loss. To understand the genomic alterations present in canine PNSTs, we analyzed tumor mutation burden, copy number alteration, and transcriptomes of eight canine PNST/normal pairs. The results suggested that H3K27me3 loss and associated gain of H3K27ac epigenetically drive human and canine tumors. These findings warrant further studies to evaluate whether these epigenetic deregulations alter similar gene signatures across species.

cancer biology↗

Basal BNIP3/NIX mitophagy is controlled by selective protection of sentinel receptors

Mitochondrial homeostasis is maintained by multiple quality control pathways, including mitophagy, which targets dysfunctional mitochondria for degradation. During receptor-mediated mitophagy, the outer membrane proteins BNIP3 and NIX directly recruit autophagy machinery to the mitochondrial surface, though their precise regulation is still unclear. In recent years, new BNIP3- and NIX-interacting proteins have been identified that influence mitophagic flux. PPTC7 and FBXL4 target BNIP3 and NIX for proteasomal turnover to keep levels of the receptors low, whereas TMEM11 is proposed to spatially control mitophagy by interacting with receptors at active mitophagy sites. However, it is unclear how each of these interactions is controlled and how they interplay with each other. Here, we identify a repressor of mitophagy, ARMC1, which forms a complex with TMEM11, BNIP3, and NIX. During mitophagy activation, ARMC1 dissociates from the complex, freeing the receptors to initiate mitophagy. We find that TMEM11 then acts in an antagonistic relationship with PPTC7, protecting the receptors from proteasomal degradation. Our data are consistent with a two-stage model. At steady state, a population of sentinel receptors is repressed and primed to respond to mitochondrial dysfunction. Once mitophagy is activated, TMEM11 protects BNIP3 and NIX, ensuring a sustained mitophagic response. Our findings provide a framework for understanding how two key regulatory pathways intersect to modulate receptor-mediated mitophagy.

Cell Biology↗

Alternative organelle targeting of OPA1 mediates fatty acid release from lipid droplets

Mitochondria and lipid droplets (LDs) are functionally coupled to coordinate fatty acid utilization and storage. However, a comprehensive understanding of mitochondria-LD alliances remains elusive. We have identified a previously unrecognized role for optical atrophy 1 (OPA1), a mitochondrial fusion factor, in the regulation of fatty acid release from LDs. We demonstrated that OPA1s exon 4 adapts an amphipathic helix to target OPA1 to LDs. OPA1 localized to LDs promote fatty acid release by facilitating the recruitment of lipases to LDs. In addition, OPA1s residence on LDs competes with its mitochondrial entry, influencing mitochondria fusion and connectivity. Furthermore, the S158N polymorphism within OPA1s exon 4 exhibiting attenuated fatty acid release from LDs is associated with changes in metabolic traits in pediatric cancer survivors. Altogether, our findings reveal that OPA1 actively mediates fatty acid release from LDs and provide a mechanistic link between OPA1 and human metabolism.

cell biology↗