Highly conserved and extremely evolvable: BMP signalling in secondary axis patterning of Cnidaria and Bilateria

Abitua PB, Gainous TB, Kaczmarczyk AN, Winchell CJ, Hudson C, Kamata K, Nakagawa M, Tsuda M, Kusakabe TG, Levine M (2015) The pre-vertebrate origins of neurogenic placodes. Nature 524:462–465

ADS  CAS  PubMed  PubMed Central  Google Scholar 

Akiyama-Oda Y, Oda H (2006) Axis specification in the spider embryo: dpp is required for radial-to-axial symmetry transformation and sog for ventral patterning. Development 133:2347–2357

CAS  PubMed  Google Scholar 

Aono A, Hazama M, Notoya K, Taketomi S, Yamasaki H, Tsukuda R, Sasaki S, Fujisawa Y (1995) Potent ectopic bone-inducing activity of bone morphogenetic protein-4/7 heterodimer. Biochem Biophys Res Commun 210:670–677

CAS  PubMed  Google Scholar 

Arendt D, Nübler-Jung K (1994) Inversion of dorsoventral axis? Nature 371:26

Arendt D, Tosches MA, Marlow H (2016) From nerve net to nerve ring, nerve cord and brain–evolution of the nervous system. Nat Rev Neurosci 17:61–72

CAS  PubMed  Google Scholar 

Arnold SJ, Robertson EJ (2009) Making a commitment: cell lineage allocation and axis patterning in the early mouse embryo. Nat Rev Mol Cell Biol 10:91–103

CAS  PubMed  Google Scholar 

Arora K, Levine MS, O’Connor MB (1994) The screw gene encodes a ubiquitously expressed member of the TGF-β family required for specification of dorsal cell fates in the Drosophila embryo. Genes Dev 8:2588–2601

CAS  PubMed  Google Scholar 

Ashe HL, Levine M (1999) Local inhibition and long-range enhancement of Dpp signal transduction by Sog. Nature 398:427–431

ADS  CAS  PubMed  Google Scholar 

Babonis LS, Martindale MQ (2017) Phylogenetic evidence for the modular evolution of metazoan signalling pathways. Philos Trans R Soc Lond B Biol Sci 372:1713

Google Scholar 

Bachiller D, Klingensmith J, Kemp C, Belo JA, Anderson RM, May SR, McMahon JA, McMahon AP, Harland RM, Rossant J, De Robertis EM (2000) The organizer factors Chordin and Noggin are required for mouse forebrain development. Nature 403:658–661

ADS  CAS  PubMed  Google Scholar 

Bauer M, Aguilar G, Wharton KA, Matsuda S, Affolter M (2023) Heterodimerization-dependent secretion of bone morphogenetic proteins in Drosophila. Dev Cell 58(645–659):e644

Google Scholar 

Beccari L, Moris N, Girgin M, Turner DA, Baillie-Johnson P, Cossy AC, Lutolf MP, Duboule D, Arias AM (2018) Multi-axial self-organization properties of mouse embryonic stem cells into gastruloids. Nature 562:272–276

ADS  CAS  PubMed  Google Scholar 

Beck S, Le Good JA, Guzman M, Ben Haim N, Roy K, Beermann F, Constam DB (2002) Extraembryonic proteases regulate Nodal signalling during gastrulation. Nat Cell Biol 4:981–985

CAS  PubMed  Google Scholar 

Ben-Haim N, Lu C, Guzman-Ayala M, Pescatore L, Mesnard D, Bischofberger M, Naef F, Robertson EJ, Constam DB (2006) The nodal precursor acting via activin receptors induces mesoderm by maintaining a source of its convertases and BMP4. Dev Cell 11:313–323

CAS  PubMed  Google Scholar 

Ben-Zvi D, Shilo BZ, Fainsod A, Barkai N (2008) Scaling of the BMP activation gradient in Xenopus embryos. Nature 453:1205–1211

ADS  CAS  PubMed  Google Scholar 

Berking S (2007) Generation of bilateral symmetry in Anthozoa: a model. J Theor Biol 246:477–490

ADS  MathSciNet  PubMed  Google Scholar 

Bier E, De Robertis EM (2015) BMP gradients: a paradigm for morphogen-mediated developmental patterning. Science 348:aaa5838

PubMed  Google Scholar 

Brazil DP, Church RH, Surae S, Godson C, Martin F (2015) BMP signalling: agony and antagony in the family. Trends Cell Biol 25:249–264

CAS  PubMed  Google Scholar 

Cannon JT, Vellutini BC, Smith J 3rd, Ronquist F, Jondelius U, Hejnol A (2016) Xenacoelomorpha is the sister group to Nephrozoa. Nature 530:89–93

ADS  CAS  PubMed  Google Scholar 

Chang C, Holtzman DA, Chau S, Chickering T, Woolf EA, Holmgren LM, Bodorova J, Gearing DP, Holmes WE, Brivanlou AH (2001) Twisted gastrulation can function as a BMP antagonist. Nature 410:483–487

ADS  CAS  PubMed  Google Scholar 

Chang YC, Pai CY, Chen YC, Ting HC, Martinez P, Telford MJ, Yu JK, Su YH (2016) Regulatory circuit rewiring and functional divergence of the duplicate admp genes in dorsoventral axial patterning. Dev Biol 410:108–118

CAS  PubMed  Google Scholar 

Chapman JA, Kirkness EF, Simakov O, Hampson SE, Mitros T, Weinmaier T, Rattei T, Balasubramanian PG, Borman J, Busam D, Disbennett K, Pfannkoch C, Sumin N, Sutton GG, Viswanathan LD, Walenz B, Goodstein DM, Hellsten U, Kawashima T, Prochnik SE, Putnam NH, Shu S, Blumberg B, Dana CE, Gee L, Kibler DF, Law L, Lindgens D, Martinez DE, Peng J, Wigge PA, Bertulat B, Guder C, Nakamura Y, Ozbek S, Watanabe H, Khalturin K, Hemmrich G, Franke A, Augustin R, Fraune S, Hayakawa E, Hayakawa S, Hirose M, Hwang JS, Ikeo K, Nishimiya-Fujisawa C, Ogura A, Takahashi T, Steinmetz PR, Zhang X, Aufschnaiter R, Eder MK, Gorny AK, Salvenmoser W, Heimberg AM, Wheeler BM, Peterson KJ, Bottger A, Tischler P, Wolf A, Gojobori T, Remington KA, Strausberg RL, Venter JC, Technau U, Hobmayer B, Bosch TC, Holstein TW, Fujisawa T, Bode HR, David CN, Rokhsar DS, Steele RE (2010) The dynamic genome of Hydra. Nature 464:592–596

ADS  CAS  PubMed  PubMed Central  Google Scholar 

Clark EG, Petersen CP (2023) BMP suppresses WNT to integrate patterning of orthogonal body axes in adult planarians. PLoS Genet 19:e1010608

CAS  PubMed  PubMed Central  Google Scholar 

Cui Y, Hackenmiller R, Berg L, Jean F, Nakayama T, Thomas G, Christian JL (2001) The activity and signaling range of mature BMP-4 is regulated by sequential cleavage at two sites within the prodomain of the precursor. Genes Dev 15:2797–2802

CAS  PubMed  PubMed Central  Google Scholar 

Dale L, Howes G, Price BM, Smith JC (1992) Bone morphogenetic protein 4: a ventralizing factor in early Xenopus development. Development 115:573–585

CAS  PubMed  Google Scholar 

Dal-Pra S, Furthauer M, Van-Celst J, Thisse B, Thisse C (2006) Noggin1 and Follistatin-like2 function redundantly to Chordin to antagonize BMP activity. Dev Biol 298:514–526

CAS  PubMed  Google Scholar 

Darras S, Nishida H (2001) The BMP/CHORDIN antagonism controls sensory pigment cell specification and differentiation in the ascidian embryo. Dev Biol 236:271–288

CAS  PubMed  Google Scholar 

Denes AS, Jekely G, Steinmetz PR, Raible F, Snyman H, Prud’homme B, Ferrier DE, Balavoine G, Arendt D (2007) Molecular architecture of annelid nerve cord supports common origin of nervous system centralization in bilateria. Cell 129:277–288

CAS  PubMed  Google Scholar 

Dick A, Hild M, Bauer H, Imai Y, Maifeld H, Schier AF, Talbot WS, Bouwmeester T, Hammerschmidt M (2000) Essential role of Bmp7 (snailhouse) and its prodomain in dorsoventral patterning of the zebrafish embryo. Development 127:343–354

CAS  PubMed  Google Scholar 

Dickmeis T, Rastegar S, Aanstad P, Clark M, Fischer N, Korzh V, Strahle U (2001) Expression of the anti-dorsalizing morphogenetic protein gene in the zebrafish embryo. Dev Genes Evol 211:568–572

CAS  PubMed  Google Scholar 

Duboc V, Rottinger E, Besnardeau L, Lepage T (2004) Nodal and BMP2/4 signaling organizes the oral-aboral axis of the sea urchin embryo. Dev Cell 6:397–410

CAS  PubMed  Google Scholar 

DuBuc TQ, Ryan JF, Martindale MQ (2019) “Dorsal-ventral” genes are part of an ancient axial patterning system: evidence from Trichoplax adhaerens (Placozoa). Mol Biol Evol 36:966–973

CAS  PubMed  PubMed Central  Google Scholar 

Dunn CW, Hejnol A, Matus DQ, Pang K, Browne WE, Smith SA, Seaver E, Rouse GW, Obst M, Edgecombe GD, Sorensen MV, Haddock SH, Schmidt-Rhaesa A, Okusu A, Kristensen RM, Wheeler WC, Martindale MQ, Giribet G (2008) Broad phylogenomic sampling improves resolution of the animal tree of life. Nature 452:745–749

ADS  CAS  PubMed  Google Scholar 

Eldar A, Dorfman R, Weiss D, Ashe H, Shilo BZ, Barkai N (2002) Robustness of the BMP morphogen gradient in Drosophila embryonic patterning. Nature 419:304–308

ADS  CAS  PubMed  Google Scholar 

Etoc F, Metzger J, Ruzo A, Kirst C, Yoney A, Ozair MZ, Brivanlou AH, Siggia ED (2016) A balance between secreted inhibitors and edge sensing controls gastruloid self-organization. Dev Cell 39:302–315

CAS  PubMed  PubMed Central  Google Scholar 

Fainsod A, Steinbeisser H, De Robertis EM (1994) On the function of BMP-4 in patterning the marginal zone of the Xenopus embryo. EMBO J 13:5015–5025

CAS  PubMed  PubMed Central  Google Scholar 

Ferguson EL, Anderson KV (1992a) Decapentaplegic acts as a morphogen to organize dorsal-ventral pattern in the Drosophila embryo. Cell 71:451–461

CAS  PubMed  Google Scholar 

Ferguson EL, Anderson KV (1992b) Localized enhancement and repression of the activity of the TGF-beta family member, decapentaplegic, is necessary for dorsal-ventral pattern formation in the Drosophila embryo. Development 114:583–597

CAS  PubMed  Google Scholar 

Feuda R, Dohrmann M, Pett W, Philippe H, Rota-Stabelli O, Lartillot N, Wörheide G, Pisani D (2017) Improved modeling of compositional heterogeneity supports sponges as sister to all other animals. Curr Biol 27:e3864

Finnerty JR, Pang K, Burton P, Paulson D, Martindale MQ (2004) Origins of bilateral symmetry: Hox and dpp expression in a sea anemone. Science 304:1335–1337

ADS  CAS  PubMed  Google Scholar 

Francois V, Solloway M, O’Neill JW, Emery J, Bier E (1994) Dorsal-ventral patterning of the Drosophila embryo depends on a putative negative growth factor encoded by the short gastrulation gene. Genes Dev 8:2602–2616

CAS  PubMed  Google Scholar 

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