Heat-triggered phospholipid flipping stabilizes plasma membrane fluidity
Термически индуцируемый переворот фосфолипидов стабилизирует текучесть плазматической мембраны
2026-07-01
SCID: 54.1/euv8apyk
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OsALA5 P4-ATPaseOsALIS2 β-subunitleaflet-resolved lipidomicsplasma membrane hyperfluidizationsaturated phosphatidylcholine flipping
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Abstract (AI)
Cells must rapidly counteract heat stress-induced hyperfluidization of the plasma membrane to prevent membrane damage1,2, yet how cells achieve such early protection remains unknown. Here we show that in rice (Oryza sativa), the P4-ATPase OsALA5, together with its β-subunit OsALIS2, mediates a heat-responsive flipping of saturated phosphatidylcholines that rapidly stabilizes plasma membrane fluidity. Using leaflet-resolved lipidomics and complementary transport assays, we demonstrate that heat exposure induces a minute-timescale shift in OsALA5 transport activity that leads to selective enrichment of saturated phosphatidylcholines in the cytoplasmic plasma membrane leaflet. This OsALA5-mediated saturated phosphatidylcholine flipping prevents plasma membrane hyperfluidization upon heat stress, thus mitigating ion leakage and cell death. Our analyses of OsALA5 orthologues in Arabidopsis thaliana and yeast support functional conservation of a rapid heat-associated response within a subset of plasma membrane-localized, phosphatidylcholine-transporting P4-ATPases. We identified a rare haplotype of OsALA5 that confers both heat tolerance and yield stability in multi-year, multi-location field trials. Thus, beyond identifying this P4-ATPase-mediated flipping of saturated phosphatidylcholines in response to heat stress and providing genetic resources to advance breeding of heat-tolerant crops, our study reveals how cells counteract heat stress-driven plasma membrane hyperfluidization at an earlier stage than the previously known transcription-dependent lipid remodelling response. In rice, the P4-ATPase complex OsALA5–OsALIS2 rapidly stabilizes membrane fluidity in response to high temperature by flipping saturated phosphatidylcholines to the cytosolic leaflet of the plasma membrane.
Key Findings
1
A rare OsALA5 haplotype confers heat tolerance and yield stability in multi-year, multi-location field trials, providing a genetic resource for breeding heat-tolerant crops.
2
Heat exposure induces minute-timescale increase in OsALA5 transport activity, selectively enriching saturated phosphatidylcholines in the cytoplasmic leaflet.
3
Orthologues of OsALA5 in Arabidopsis thaliana and yeast show conserved rapid heat-associated responses among some plasma membrane-localized phosphatidylcholine-transporting P4-ATPases.
4
OsALA5-mediated flipping of saturated phosphatidylcholines prevents plasma membrane hyperfluidization, reducing ion leakage and cell death under heat stress.
5
The P4-ATPase OsALA5 and its β-subunit OsALIS2 mediate heat-responsive flipping of saturated phosphatidylcholines in rice plasma membrane.
Research Object
P4-ATPase complex OsALA5–OsALIS2 in rice mediating flipping of saturated phosphatidylcholines in the plasma membrane
Research Subject
Rapid heat-triggered flipping/enrichment of saturated phosphatidylcholines into the cytosolic leaflet that stabilizes plasma membrane fluidity and prevents heat-induced hyperfluidization, ion leakage, and cell death
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2026-07-01
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