Cytoneme delivery of Sonic Hedgehog from ligand-producing cells requires Myosin 10 and a Dispatched-BOC/CDON co-receptor complex.


Journal

eLife
ISSN: 2050-084X
Titre abrégé: Elife
Pays: England
ID NLM: 101579614

Informations de publication

Date de publication:
11 02 2021
Historique:
received: 25 07 2020
accepted: 10 02 2021
pubmed: 12 2 2021
medline: 29 1 2022
entrez: 11 2 2021
Statut: epublish

Résumé

Morphogens function in concentration-dependent manners to instruct cell fate during tissue patterning. The cytoneme morphogen transport model posits that specialized filopodia extend between morphogen-sending and responding cells to ensure that appropriate signaling thresholds are achieved. How morphogens are transported along and deployed from cytonemes, how quickly a cytoneme-delivered, receptor-dependent signal is initiated, and whether these processes are conserved across phyla are not known. Herein, we reveal that the actin motor Myosin 10 promotes vesicular transport of Sonic Hedgehog (SHH) morphogen in mouse cell cytonemes, and that SHH morphogen gradient organization is altered in neural tubes of During development, cells must work together and talk to each other to build the organs and tissues of the growing embryo. To communicate precisely with long-distance targets, cells can project a series of thin finger-like structures known as cytonemes. Cells use these miniature highways to exchange cargo and signals, such as the protein sonic hedgehog (SHH for short). Alterations to the way SHH is exchanged during development predispose to cancer and lead to disorders of the nervous system. Yet, the mechanisms by which cytonemes work in mammals remain to be fully elucidated. In particular, it is still unclear how the structures start to form, and how the proteins are loaded and transported from one end to another. A ‘molecular motor’ called myosin 10, which can carry cargo along the internal skeleton of cells, may be involved in these processes. To find out, Hall et al. used fluorescent probes to track both myosin 10 and SHH in mouse cells, showing that myosin 10 carries SHH from the core of the signal-producing cell to the tips of cytonemes. There, the protein is passed to the target cell upon contact, triggering a quick response. SHH also appeared to be more than just passive cargo, interacting with another group of proteins in the signal-emitting cell before reaching its target. This mechanism then encourages the signalling cells to produce more cytonemes towards their neighbours. SHH is crucial during development, but also after birth: in fact, changes to SHH transport in adulthood can also disrupt tissue balance and hinder healing. Understanding how healthy tissues send this signal may reveal why and how disease emerges.

Autres résumés

Type: plain-language-summary (eng)
During development, cells must work together and talk to each other to build the organs and tissues of the growing embryo. To communicate precisely with long-distance targets, cells can project a series of thin finger-like structures known as cytonemes. Cells use these miniature highways to exchange cargo and signals, such as the protein sonic hedgehog (SHH for short). Alterations to the way SHH is exchanged during development predispose to cancer and lead to disorders of the nervous system. Yet, the mechanisms by which cytonemes work in mammals remain to be fully elucidated. In particular, it is still unclear how the structures start to form, and how the proteins are loaded and transported from one end to another. A ‘molecular motor’ called myosin 10, which can carry cargo along the internal skeleton of cells, may be involved in these processes. To find out, Hall et al. used fluorescent probes to track both myosin 10 and SHH in mouse cells, showing that myosin 10 carries SHH from the core of the signal-producing cell to the tips of cytonemes. There, the protein is passed to the target cell upon contact, triggering a quick response. SHH also appeared to be more than just passive cargo, interacting with another group of proteins in the signal-emitting cell before reaching its target. This mechanism then encourages the signalling cells to produce more cytonemes towards their neighbours. SHH is crucial during development, but also after birth: in fact, changes to SHH transport in adulthood can also disrupt tissue balance and hinder healing. Understanding how healthy tissues send this signal may reveal why and how disease emerges.

Identifiants

pubmed: 33570491
doi: 10.7554/eLife.61432
pii: 61432
pmc: PMC7968926
doi:
pii:

Substances chimiques

Boc protein, mouse 0
Cdon protein, mouse 0
Cell Adhesion Molecules 0
Hedgehog Proteins 0
Immunoglobulin G 0
Ligands 0
Membrane Proteins 0
Myo10 protein, mouse 0
Receptors, Cell Surface 0
Shh protein, mouse 0
dispatched protein, mouse 0
Myosins EC 3.6.4.1

Types de publication

Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Subventions

Organisme : NIGMS NIH HHS
ID : R35 GM122546
Pays : United States
Organisme : NCI NIH HHS
ID : P30 CA021765
Pays : United States
Organisme : NIGMS NIH HHS
ID : R01 GM134531
Pays : United States

Informations de copyright

© 2021, Hall et al.

Déclaration de conflit d'intérêts

EH, MD, DS, YZ, BW, RL, SP, AS, JT, RC, MM, CR, SO No competing interests declared

Références

J Biol Chem. 2012 Dec 21;287(52):43708-19
pubmed: 23118222
Biochem J. 1994 Jun 15;300 ( Pt 3):665-72
pubmed: 8010948
Cell Rep. 2012 Aug 30;2(2):308-20
pubmed: 22902404
Nat Commun. 2014 Jul 08;5:4272
pubmed: 25001599
Nat Cell Biol. 2004 Jun;6(6):523-31
pubmed: 15156152
Development. 2011 Jan;138(1):75-85
pubmed: 21115611
Proc Natl Acad Sci U S A. 2006 Apr 25;103(17):6548-53
pubmed: 16611729
Development. 2014 Feb;141(4):729-36
pubmed: 24496611
Cell. 1999 May 28;97(5):599-607
pubmed: 10367889
Dev Cell. 2016 Mar 21;36(6):639-53
pubmed: 26972603
Dev Cell. 2015 Feb 9;32(3):290-303
pubmed: 25619925
Nat Rev Mol Cell Biol. 2013 Jul;14(7):416-29
pubmed: 23719536
Genes Dev. 2007 May 15;21(10):1244-57
pubmed: 17504941
Science. 2014 Feb 21;343(6173):1244624
pubmed: 24385607
Cell. 2006 Apr 21;125(2):343-57
pubmed: 16630821
Trends Pharmacol Sci. 2016 Jan;37(1):62-72
pubmed: 26432668
PLoS One. 2012;7(8):e42791
pubmed: 22912738
Dev Biol. 1994 Apr;162(2):402-13
pubmed: 8150204
Nature. 2013 May 30;497(7451):628-32
pubmed: 23624372
Wiley Interdiscip Rev Dev Biol. 2014 Nov-Dec;3(6):445-63
pubmed: 25186102
Proc Natl Acad Sci U S A. 2011 Mar 15;108(11):4482-7
pubmed: 21368195
J Biol Chem. 2019 Nov 1;294(44):16034-16048
pubmed: 31506300
Nature. 1996 Nov 14;384(6605):176-9
pubmed: 8906794
J Biol Chem. 1998 May 29;273(22):14037-45
pubmed: 9593755
Dev Cell. 2006 May;10(5):647-56
pubmed: 16647304
Biochem Biophys Res Commun. 2004 Jun 18;319(1):214-20
pubmed: 15158464
Nature. 2006 Nov 16;444(7117):369-73
pubmed: 17086203
Development. 2017 Sep 1;144(17):3134-3144
pubmed: 28743798
Development. 2000 Apr;127(8):1593-605
pubmed: 10725236
Cell. 2002 Oct 4;111(1):63-75
pubmed: 12372301
Sci Rep. 2019 Jan 24;9(1):597
pubmed: 30679680
Development. 2017 Feb 15;144(4):552-566
pubmed: 28196803
Sci Rep. 2017 Dec 11;7(1):17354
pubmed: 29229982
PLoS One. 2018 Aug 27;13(8):e0203170
pubmed: 30148884
Dev Cell. 2007 Jul;13(1):57-71
pubmed: 17609110
J Biol Chem. 1999 Apr 23;274(17):12049-54
pubmed: 10207028
Hum Mol Genet. 2009 May 15;18(10):1719-39
pubmed: 19223390
Nature. 2001 Jun 7;411(6838):716-20
pubmed: 11395778
Dev Cell. 2011 Jun 14;20(6):775-87
pubmed: 21664576
PLoS Biol. 2018 Jul 3;16(7):e2005970
pubmed: 29969450
Genes Dev. 2012 Jun 15;26(12):1312-25
pubmed: 22677548
Trends Cell Biol. 2019 May;29(5):385-395
pubmed: 30852081
Development. 2008 Mar;135(6):1097-106
pubmed: 18272593
Nat Cell Biol. 2013 Nov;15(11):1269-81
pubmed: 24121526
Cell Rep. 2017 Jun 6;19(10):2074-2087
pubmed: 28591579
Nat Protoc. 2015 May;10(5):660-80
pubmed: 25837418
Proc Natl Acad Sci U S A. 2015 Jul 7;112(27):8320-5
pubmed: 26100903
Science. 2018 Aug 10;361(6402):
pubmed: 29954986
Elife. 2018 Jan 23;7:
pubmed: 29359685
Cell Rep. 2018 Jul 24;24(4):973-986.e8
pubmed: 30044992
Front Immunol. 2014 Sep 16;5:442
pubmed: 25278937
Nat Cell Biol. 2002 Mar;4(3):246-50
pubmed: 11854753
Cell Signal. 2017 Jan;30:30-40
pubmed: 27871935
J Vis Exp. 2011 Aug 19;(54):
pubmed: 21876526
Dev Cell. 2020 Nov 23;55(4):450-467.e8
pubmed: 33038332
Cell. 1999 Dec 23;99(7):803-15
pubmed: 10619433
Genes Dev. 2010 Jan 1;24(1):57-71
pubmed: 20048000
Nature. 2005 Oct 13;437(7061):1018-21
pubmed: 16136078
Proc Natl Acad Sci U S A. 2011 Aug 2;108(31):12591-8
pubmed: 21690386
Proc Natl Acad Sci U S A. 2006 Aug 15;103(33):12411-6
pubmed: 16894163
Curr Biol. 2019 Jan 21;29(2):202-216.e7
pubmed: 30639111
J Biol Chem. 2001 Sep 7;276(36):34348-54
pubmed: 11457842
Sci Rep. 2019 Mar 12;9(1):4194
pubmed: 30862905
EMBO J. 2011 Jun 03;30(13):2734-47
pubmed: 21642953
Curr Biol. 2002 Sep 17;12(18):1628-32
pubmed: 12372258
Development. 2017 Oct 1;144(19):3612-3624
pubmed: 28827391
J Vis Exp. 2012 Jun 21;(64):
pubmed: 22760161
Elife. 2017 Aug 21;6:
pubmed: 28825565
Sci Signal. 2015 Jun 02;8(379):ra55
pubmed: 26038600
J Biol Chem. 2006 Feb 17;281(7):4087-93
pubmed: 16339763
Int J Dev Biol. 2018;62(1-2-3):225-234
pubmed: 29616731
J Biol Chem. 2010 Jan 22;285(4):2562-8
pubmed: 19920144
Proc Natl Acad Sci U S A. 2009 Mar 3;106(9):3196-201
pubmed: 19218434
Dev Cell. 2018 May 21;45(4):512-525.e5
pubmed: 29754802
Science. 1996 Oct 11;274(5285):255-9
pubmed: 8824192
Proc Natl Acad Sci U S A. 2011 Mar 1;108(9):3572-7
pubmed: 21321230
Bio Protoc. 2018 Jul 5;8(13):
pubmed: 30906805
Sci Rep. 2018 Jan 17;8(1):888
pubmed: 29343825
J Cell Sci. 2011 Nov 15;124(Pt 22):3733-41
pubmed: 22124140
Nat Commun. 2014 Dec 04;5:5649
pubmed: 25472772
Curr Opin Genet Dev. 2014 Aug;27:67-73
pubmed: 24907447

Auteurs

Eric T Hall (ET)

Department of Cell and Molecular Biology, St. Jude Children's Research Hospital, Memphis, United States.

Miriam E Dillard (ME)

Department of Cell and Molecular Biology, St. Jude Children's Research Hospital, Memphis, United States.

Daniel P Stewart (DP)

Department of Cell and Molecular Biology, St. Jude Children's Research Hospital, Memphis, United States.

Yan Zhang (Y)

Department of Cell and Molecular Biology, St. Jude Children's Research Hospital, Memphis, United States.

Ben Wagner (B)

Cell and Tissue Imaging Center, St. Jude Children's Research Hospital, Memphis, United States.

Rachel M Levine (RM)

Department of Cell and Molecular Biology, St. Jude Children's Research Hospital, Memphis, United States.
Center for Advanced Genome Engineering, St. Jude Children's Research Hospital, Memphis, United States.

Shondra M Pruett-Miller (SM)

Department of Cell and Molecular Biology, St. Jude Children's Research Hospital, Memphis, United States.
Center for Advanced Genome Engineering, St. Jude Children's Research Hospital, Memphis, United States.

April Sykes (A)

Department of Biostatistics, St. Jude Children's Research Hospital, Memphis, United States.

Jamshid Temirov (J)

Department of Cell and Molecular Biology, St. Jude Children's Research Hospital, Memphis, United States.

Richard E Cheney (RE)

Department of Cell Biology and Physiology, University of North Carolina School of Medicine, Chapel Hill, United States.

Motomi Mori (M)

Department of Biostatistics, St. Jude Children's Research Hospital, Memphis, United States.

Camenzind G Robinson (CG)

Cell and Tissue Imaging Center, St. Jude Children's Research Hospital, Memphis, United States.

Stacey K Ogden (SK)

Department of Cell and Molecular Biology, St. Jude Children's Research Hospital, Memphis, United States.

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