Tissue shear as a cue for aligning planar polarity in the developing Drosophila wing

被引:0
作者
Tan, Su Ee [1 ]
Strutt, David [1 ]
机构
[1] Univ Sheffield, Sch Biosci, Firth Court, Sheffield, England
基金
英国工程与自然科学研究理事会; 英国惠康基金;
关键词
7-PASS TRANSMEMBRANE CADHERIN; CELL POLARITY; SHAPE; MECHANICS; FAT; PROLIFERATION; ESTABLISHMENT; LOCALIZATION; TRANSMISSION; CYTOKINESIS;
D O I
10.1038/s41467-025-56744-7
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Planar polarity establishment in epithelia requires interpretation of directional tissue-level information at cellular and molecular levels. Mechanical forces exerted during tissue morphogenesis are emerging as crucial tissue-level directional cues, yet the mechanisms by which they regulate planar polarity are poorly understood. Using the Drosophila pupal wing, we confirm that tissue stress promotes proximal-distal (PD) planar polarity alignment. Moreover, high tissue stress anisotropy can reduce the rate of accumulation and lower the stability on cell junctions of the core planar polarity protein Frizzled (Fz). Notably, under high tissue stress anisotropy, we see an increased gradient of cell flow, characterised by differential velocities across adjacent cell rows. This promotes core protein turnover at cell-cell contacts parallel to the flow direction, possibly via dissociation of transmembrane complexes by shear forces. We propose that gradients of cell flow play a critical role in establishing and maintaining PD-oriented polarity alignment in the developing pupal wing.
引用
收藏
页数:23
相关论文
共 74 条
[1]   Cell Flow Reorients the Axis of Planar Polarity in the Wing Epithelium of Drosophila [J].
Aigouy, Benoit ;
Farhadifar, Reza ;
Staple, Douglas B. ;
Sagner, Andreas ;
Roeper, Jens-Christian ;
Juelicher, Frank ;
Eaton, Suzanne .
CELL, 2010, 142 (05) :773-786
[2]   Mathematical modeling of planar cell polarity to understand domineering nonautonomy [J].
Amonlirdviman, K ;
Khare, NA ;
Tree, DRP ;
Chen, WS ;
Axelrod, JD ;
Tomlin, CJ .
SCIENCE, 2005, 307 (5708) :423-426
[3]   Planar cell polarity: global inputs establishing cellular asymmetry [J].
Aw, Wen Yih ;
Devenport, Danelle .
CURRENT OPINION IN CELL BIOLOGY, 2017, 44 :110-116
[4]   Transient Tissue-Scale Deformation Coordinates Alignment of Planar Cell Polarity Junctions in the Mammalian Skin [J].
Aw, Wen Yih ;
Heck, Bryan W. ;
Joyce, Bradley ;
Devenport, Danelle .
CURRENT BIOLOGY, 2016, 26 (16) :2090-2100
[5]   No Evidence that Wnt Ligands Are Required for Planar Cell Polarity in Drosophila [J].
Ben Ewen-Campen ;
Comyn, Typhaine ;
Vogt, Eric ;
Perrimon, Norbert .
CELL REPORTS, 2020, 32 (10)
[6]  
Blanchard GB, 2009, NAT METHODS, V6, P458, DOI [10.1038/nmeth.1327, 10.1038/NMETH.1327]
[7]   PreMosa: extracting 2D surfaces from 3D microscopy mosaics [J].
Blasse, Corinna ;
Saalfeld, Stephan ;
Etournay, Raphael ;
Sagner, Andreas ;
Eaton, Suzanne ;
Myers, Eugene W. .
BIOINFORMATICS, 2017, 33 (16) :2563-2569
[8]   Mechanical state, material properties and continuous description of an epithelial tissue [J].
Bonnet, Isabelle ;
Marcq, Philippe ;
Bosveld, Floris ;
Fetler, Luc ;
Bellaiche, Yohanns ;
Graner, Francois .
JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2012, 9 (75) :2614-2623
[9]   Distinct mechanisms of planar polarization by the core and Fat-Dachsous planar polarity pathways in the Drosophila wing [J].
Brittle, Amy ;
Warrington, Samantha J. ;
Strutt, Helen ;
Manning, Elizabeth ;
Tan, Su Ee ;
Strutt, David .
CELL REPORTS, 2022, 40 (13)
[10]   Planar Polarity Specification through Asymmetric Subcellular Localization of Fat and Dachsous [J].
Brittle, Amy ;
Thomas, Chloe ;
Strutt, David .
CURRENT BIOLOGY, 2012, 22 (10) :907-914