Function of planar cell polarity in lens development
Author:
Fund Project:

National Natural Science Foundation of China(No.81770905)

  • Article
  • | |
  • Metrics
  • |
  • Reference [62]
  • |
  • Related [20]
  • | | |
  • Comments
    Abstract:

    Regarded as a complex biological process, lens development involves a range of signal molecules and their crosstalk networks. Recently,the role of planar cell polarity(PCP)signaling pathway in lens development has attracted increasing attention. It has been reported that PCP is critical for lens morphology and transparency maintaining. The studies performed on PCP serve to provide guidelines on how to optimize the morphology of regenerated lens. This is thought as presenting an effective therapy for infant cataract from a clinical perspective. This article will give a comprehensive review of the role of PCP signaling pathways in the lens development.

    Reference
    1 Campanale JP, Sun TY, Montell DJ. Development and dynamics of cell polarity at a glance. J Cell Sci 2017; 130(7): 1201-1207
    2 Butler MT, Wallingford JB. Planar cell polarity in development and disease. Nat Rev Mol Cell Biol 2017; 18(6): 375-388
    3 Sugiyama Y, Lovicu FJ, Mcavoy JW. Planar cell polarity in the mammalian eye lens. Organogenesis 2011; 7(3): 191-201
    4 Singh J, Mlodzik M. Planar cell polarity signaling: coordination of cellular orientation across tissues. Wiley Interdiscip Rev Dev Biol 2012; 1(4): 479-499
    5 Aw WY, Devenport D. Planar cell polarity: global inputs establishing cellular asymmetry. Curr Opin Cell Biol 2017; 44: 110-116
    6 Lawrence PA, Casal J. Planar cell polarity: two genetic systems use one mechanism to read gradients. Development 2018; 145(23): 168229
    7 Peng Y, Axelrod JD. Asymmetric protein localization in planar cell polarity: mechanisms, puzzles, and challenges. Curr Top Dev Biol 2012; 101: 33-53
    8 Li D, Wang J. Planar Cell Polarity Signaling in Mammalian Cardiac Morphogenesis. Pediatr Cardiol 2018; 39(5): 1052-1062
    9 Kunimoto K, Bayly RD, Vladar EK, et al. Disruption of Core Planar Cell Polarity Signaling Regulates Renal Tubule Morphogenesis but Is Not Cystogenic. Curr Biol 2017; 27(20): 3120-3131
    10 Strutt H, Gamage J, Strutt D. Reciprocal action of Casein Kinase Iε on core planar polarity proteins regulates clustering and asymmetric localisation. Elife 2019; 8: e45107
    11 Shami Shah A, Batrouni AG, Kim D, et al. PLEKHA4/kramer Attenuates Dishevelled Ubiquitination to Modulate Wnt and Planar Cell Polarity Signaling. Cell Rep 2019; 27(7): 2157-2170
    12 Nagaoka T, Furuse M, Ohtsuka T, et al. Vangl2 interaction plays a role in the proteasomal degradation of Prickle2. Sci Rep 2019; 9(1): 2912
    13 Yang Y, Mlodzik M. Wnt-Frizzled/planar cell polarity signaling: cellular orientation by facing the wind(Wnt). Annu Rev Cell Dev Biol 2015; 31: 623-646
    14 Devenport D. The cell biology of planar cell polarity. J Cell Biol 2014; 207(2): 171-179
    15 Montes AJ, Morata G. Homeostatic response to blocking cell division in Drosophila imaginal discs: Role of the Fat/Dachsous(Ft/Ds)pathway. Dev Biol 2017; 424(2): 113-123
    16 Wortman JC, Nahmad M, Zhang PC, et al. Expanding signaling-molecule wavefront model of cell polarization in the Drosophila wing primordium. PLoS Comput Biol 2017; 13(7): e1005610
    17 Goodrich LV, Strutt D. Principles of planar polarity in animal development. Development 2011; 138(10): 1877-1892
    18 Aigouy B, Farhadifar R, Staple DB, et al. Cell flow reorients the axis of planar polarity in the wing epithelium of Drosophila. Cell 2010; 142(5): 773-786
    19 Aw WY, Heck BW, Joyce B, et al. Transient Tissue-Scale Deformation Coordinates Alignment of Planar Cell Polarity Junctions in the Mammalian Skin. Curr Biol 2016; 26(16): 2090-2100
    20 Fisher KH, Strutt D. A theoretical framework for planar polarity establishment through interpretation of graded cues by molecular bridges. Development 2019; 146(3): 168955
    21 Lin J, Yue Z. Coupling of apical-basal polarity and planar cell polarity to interpret the Wnt signaling gradient in feather development. Development 2018; 145(17): 162792
    22 Chu CW, Sokol SY. Wnt proteins can direct planar cell polarity in vertebrate ectoderm. Elife 2016; 5: e16463
    23 Humphries AC, Mlodzik M. From instruction to output: Wnt/PCP signaling in development and cancer. Curr Opin Cell Biol 2018; 51: 110-116
    24 Minegishi K, Hashimoto M, Ajima R, et al. A Wnt5 Activity Asymmetry and Intercellular Signaling via PCP Proteins Polarize Node Cells for Left-Right Symmetry Breaking. Dev Cell 2017; 40(5): 439-452
    25 Casal J, Lawrence PA, Struhl G. Two separate molecular systems, Dachsous/Fat and Starry night/Frizzled, act independently to confer planar cell polarity. Development 2006; 133(22): 4561-4572
    26 Saavedra P, Brittle A, Palacios IM, et al. Planar cell polarity: the Dachsous/Fat system contributes differently to the embryonic and larval stages of Drosophila. Biol Open 2016; 5(4): 397-408
    27 Zakaria S, Mao Y, Kuta A, et al. Regulation of neuronal migration by Dchs1-Fat4 planar cell polarity. Curr Biol 2014; 24(14): 1620-1627
    28 Pan G, Feng Y, Ambegaonkar AA, et al. Signal transduction by the Fat cytoplasmic domain. Development 2013; 140(4): 831-842
    29 Casal J, Ibanez-Jimenez B, Lawrence PA. Planar cell polarity: the prickle gene acts independently on both the Ds/Ft and the Stan/Fz systems. Development 2018; 145(18): 168112
    30 Wang Y, Chang H, Rattner A, et al. Frizzled Receptors in Development and Disease. Curr Top Dev Biol 2016; 117:113-139
    31 Nishimura T, Honda H, Takeichi M. Planar cell polarity links axes of spatial dynamics in neural-tube closure. Cell 2012; 149(5): 1084-1097
    32 Yu J, Chen L, Cui B, et al. Wnt5a induces ROR1/ROR2 heterooligomerization to enhance leukemia chemotaxis and proliferation. J Clin Invest 2016; 126(2): 585-598
    33 Han C, Li J, Wang C, et al. Wnt5a Contributes to the Differentiation of Human Embryonic Stem Cells into Lentoid Bodies Through the Noncanonical Wnt/JNK Signaling Pathway. Invest Ophthalmol Vis Sci 2018; 59(8): 3449-3460
    34 Ambegaonkar AA, Irvine KD. Coordination of planar cell polarity pathways through Spiny-legs. Elife 2015; 4: e09946
    35 Sadeqzadeh E, de Bock CE, Thorne RF. Sleeping giants: emerging roles for the fat cadherins in health and disease. Med Res Rev 2014; 34(1): 190-221
    36 Saburi S, Hester I, Goodrich L, et al. Functional interactions between Fat family cadherins in tissue morphogenesis and planar polarity. Development 2012; 139(10): 1806-1820
    37 Cvekl A, Zhang X. Signaling and Gene Regulatory Networks in Mammalian Lens Development. Trends Genet 2017; 33(10): 677-702
    38 Carvajal-Gonzalez JM, Roman AC, Mlodzik M. Positioning of centrioles is a conserved readout of Frizzled planar cell polarity signalling. Nat Commun 2016; 7: 11135
    39 Haupt A, Minc N. How cells sense their own shape-mechanisms to probe cell geometry and their implications in cellular organization and function. J Cell Sci 2018; 131(6): 214015
    40 Matakatsu H, Blair SS, Fehon RG. Size does matter. Cell Cycle 2017; 16(10): 907-908
    41 Hale R, Strutt D. Conservation of Planar Polarity Pathway Function Across the Animal Kingdom. Annu Rev Genet 2015; 49: 529-551
    42 Cvekl A, Ashery-Padan R. The cellular and molecular mechanisms of vertebrate lens development. Development 2014; 141(23): 4432-4444
    43 Lang RA, Herman K, Reynolds AB, et al. p120-catenin-dependent junctional recruitment of Shroom3 is required for apical constriction during lens pit morphogenesis. Development 2014; 141(16): 3177-3187
    44 Muccioli M, Qaisi D, Herman K, et al. Lens placode planar cell polarity is dependent on Cdc42-mediated junctional contraction inhibition. Dev Biol 2016; 412(1): 32-43
    45 Piatigorsky J. Lens differentiation in vertebrates: A review of cellular and molecular features. Differentiation 1981; 19(3): 134-153
    46 Rasiah PK, Maddala R, Bennett V, et al. Ankyrin-G regulated epithelial phenotype is required for mouse lens morphogenesis and growth. Dev Biol 2019; 446(1): 119-131
    47 Tang LY, Yamashita M, Coussens NP, et al. Ablation of Smurf2 reveals an inhibition in TGF-beta signalling through multiple mono-ubiquitination of Smad3. EMBO J 2011; 30(23): 4777-4789
    48 Narimatsu M, Bose R, Pye M, et al. Regulation of planar cell polarity by Smurf ubiquitin ligases. Cell 2009; 137(2): 295-307
    49 Sugimura K, Ishihara S. The mechanical anisotropy in a tissue promotes ordering in hexagonal cell packing. Development 2013; 140(19): 4091-4101
    50 Chauhan BK, Lou M, Zheng Y, et al. Balanced Rac1 and RhoA activities regulate cell shape and drive invagination morphogenesis in epithelia. Proc Natl Acad Sci U S A 2011; 108(45): 18289-18294
    51 Chamberlain CG, Mcavoy JW. Induction of lens fibre differentiation by acidic and basic fibroblast growth factor(FGF). Growth Factors 1989; 1(2): 125-134
    52 Zhao G, Wojciechowski MC, Jee S, et al. Negative regulation of TGFbeta-induced lens epithelial to mesenchymal transition(EMT)by RTK antagonists. Exp Eye Res 2015; 132: 9-16
    53 Tan X, Zhu Y, Chen C, et al. Sprouty2 Suppresses Epithelial-Mesenchymal Transition of Human Lens Epithelial Cells through Blockade of Smad2 and ERK1/2 Pathways. PLoS One 2016; 11(7): e0159275
    54 Newitt P, Boros J, Madakashira BP, et al. Sef is a negative regulator of fiber cell differentiation in the ocular lens. Differentiation 2010; 80(1): 53-67
    55 Shin EH, Zhao G, Wang Q, et al. Sprouty gain of function disrupts lens cellular processes and growth by restricting RTK signaling. Dev Biol 2015; 406(2): 129-146
    56 Zhao G, Bailey CG, Feng Y, et al. Negative regulation of lens fiber cell differentiation by RTK antagonists Spry and Spred. Exp Eye Res 2018; 170: 148-159
    57 Susanto A, Zhao G, Wazin F, et al. Spred negatively regulates lens growth by modulating epithelial cell proliferation and fiber differentiation. Exp Eye Res 2019; 178: 160-175
    58 Mcavoy JW, Dawes LJ, Sugiyama Y, et al. Intrinsic and extrinsic regulatory mechanisms are required to form and maintain a lens of the correct size and shape. Exp Eye Res 2017; 156: 34-40
    59 Jones W, Rodriguez J, Bassnett S. Targeted deletion of fibrillin-1 in the mouse eye results in ectopia lentis and other ocular phenotypes associated with Marfan syndrome. Dis Model Mech 2019; 12(1): 037283
    60 Maddala R, Nagendran T, Lang RA, et al. Rap1 GTPase is required for mouse lens epithelial maintenance and morphogenesis. Dev Biol 2015; 406(1): 74-91
    61 Maddala R, Chauhan BK, Walker C, et al. Rac1 GTPase-deficient mouse lens exhibits defects in shape, suture formation, fiber cell migration and survival. Dev Biol 2011; 360(1): 30-43
    62 Sahu M, Sharma R, Yadav S, et al. Lens specific RLIP76 transgenic mice show a phenotype similar to microphthalmia. Exp Eye Res 2014; 118: 125-134
    Cited by
    Comments
    Comments
    分享到微博
    Submit
Get Citation

Yi-Jia Chen, Jin-Yan Li, Shuai Ouyang,/et al.Function of planar cell polarity in lens development. Guoji Yanke Zazhi( Int Eye Sci) 2019;19(12):2041-2044

Copy
Share
Article Metrics
  • Abstract:1147
  • PDF: 1302
  • HTML: 0
  • Cited by: 0
Publication History
  • Received:March 22,2019
  • Revised:October 31,2019
  • Online: November 21,2019