⚙
AI-generated deep summary
by claude@2026-07, 2026-07-04
· read from full text
ⓘ
The study examines how PAK-family kinases regulate cell–cell fusion in the fission yeast Schizosaccharomyces pombe, focusing on fusion pore opening/expansion and subsequent pore closure. Using pak mutants, the authors report that PAK activity—mainly Pak2, with a minor contribution from Pak1—is required to prevent post-fusion pore closure, and that Pak2 localizes to the fusion site to promote irreversible fusion by antagonizing cell-wall repair; they also find that osmotic stabilization suppresses PAK-associated fusion defects, indicating a role in cell-wall remodeling. Correlative light and cryo–soft-X-ray tomography shows that resealed pores in PAK mutants rebuild an intact cell wall. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.
Abstract
Cell–cell fusion is critical for the sexual life cycle, as it drives the unidirectional transition between haploid and diploid phases. In eukaryotes where fusion occurs between partners with cell wall, fusion requires not only plasma membrane merging but also local removal of the intervening cell wall. 1–3 . However, the integrity of the cell wall, which resists the strong internal turgor pressure and is essential for survival 4 , is normally monitored by signaling pathways that promote repair upon damage 5,6 . How cell wall integrity pathways allow localized cell wall degradation is not known. In the fission yeast Schizosaccharomyces pombe , we previously identified pak2Δ mutants that exhibit transient fusion: cells briefly fuse and exchange cytoplasmic contents that signal meiosis but then reseal their fusion pore. This reversal of fusion directionality induces meiosis in haploid cells, with catastrophic consequences 7 . Here, we show that PAK activity is essential for cell-cell fusion, with major contribution for Pak2 and a more minor role for the essential Pak1. Pak2 accumulates at the fusion site, where its kinase activity is controlled to promote both fusion pore opening and expansion, thereby preventing post-fusion pore closure. Strikingly, osmotic stabilization largely suppresses all PAK-associated fusion defects, pointing to a role in cell-wall remodeling rather than plasma-membrane merging. Indeed, correlative light and cryo–soft-X-ray tomography reveals that resealed pores in PAK mutants rebuilt an intact cell wall. Thus, PAKs enforce fusion directionality by antagonizing cell-wall repair mechanisms that otherwise restore separation between mating partners.
Full text
1,778 characters
· extracted from
oa-doi-fallback
· click to expand
Abstract
Cell–cell fusion is critical for the sexual life cycle, as it drives the unidirectional transition between haploid and diploid phases. In eukaryotes where fusion occurs between partners with cell wall, fusion requires not only plasma membrane merging but also local removal of the intervening cell wall. 1–3. However, the integrity of the cell wall, which resists the strong internal turgor pressure and is essential for survival 4, is normally monitored by signaling pathways that promote repair upon damage 5,6. How cell wall integrity pathways allow localized cell wall degradation is not known. In the fission yeast Schizosaccharomyces pombe, we previously identified pak2Δ mutants that exhibit transient fusion: cells briefly fuse and exchange cytoplasmic contents that signal meiosis but then reseal their fusion pore. This reversal of fusion directionality induces meiosis in haploid cells, with catastrophic consequences 7. Here, we show that PAK activity is essential for cell-cell fusion, with major contribution for Pak2 and a more minor role for the essential Pak1. Pak2 accumulates at the fusion site, where its kinase activity is controlled to promote both fusion pore opening and expansion, thereby preventing post-fusion pore closure. Strikingly, osmotic stabilization largely suppresses all PAK-associated fusion defects, pointing to a role in cell-wall remodeling rather than plasma-membrane merging. Indeed, correlative light and cryo–soft-X-ray tomography reveals that resealed pores in PAK mutants rebuilt an intact cell wall. Thus, PAKs enforce fusion directionality by antagonizing cell-wall repair mechanisms that otherwise restore separation between mating partners.
Competing Interest Statement
The authors have declared no competing interest.
Text is read by the "Ask this paper" AI Q&A widget below.
Extraction quality varies by source — PMC NXML preserves structure
cleanly, OA-HTML may include some navigation residue, and OA-PDF can
have broken hyphenation. The publisher copy
(via DOI)
is the canonical version.