Photo-annealing of microtissues creates high-density capillary network containing living matter in a volumetric-independent manner
The vascular tree is crucial for the survival and function of large living tissues. Despite breakthroughs in 3D bioprinting to endow engineered tissues with large blood vessels, there is currently no approach to engineer high-density capillary networks into living tissues in a scalable manner. We he...
Saved in:
Published in: | Advanced materials (Weinheim) |
---|---|
Main Authors: | , , , , , , , , , , |
Format: | Journal Article |
Language: | Norwegian |
Published: |
2023
|
Online Access: | Get full text |
Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
Abstract | The vascular tree is crucial for the survival and function of large living tissues. Despite breakthroughs in 3D bioprinting to endow engineered tissues with large blood vessels, there is currently no approach to engineer high-density capillary networks into living tissues in a scalable manner. We here present photo-annealing of living microtissues(PALM) as a scalable strategy to engineer capillary-rich tissues. Specifically, in-air microfluidics was used to produce living microtissues composed of cell-laden microgels in ultra-high throughput, which could be photo-annealed into a monolithic living matter. Annealed microtissues inherently give rise to an open and interconnected pore network within the resulting living matter. Interestingly, utilizing soft microgels enables microgel deformation, which leads to the uniform formation of capillary-sized pores. Importantly, the ultra-high throughput nature underlying the microtissue formation uniquely facilitates scalable production of living tissues of clinically relevant sizes (>1 cm3 ) with an integrated high-density capillary network. In short, PALM generates monolithic, microporous, modular tissues that meet the previously unsolved need for large engineered tissues containing high-density vascular networks, which is anticipated to advance the fields of engineered organs, regenerative medicine, and drug screening |
---|---|
AbstractList | The vascular tree is crucial for the survival and function of large living tissues. Despite breakthroughs in 3D bioprinting to endow engineered tissues with large blood vessels, there is currently no approach to engineer high-density capillary networks into living tissues in a scalable manner. We here present photo-annealing of living microtissues(PALM) as a scalable strategy to engineer capillary-rich tissues. Specifically, in-air microfluidics was used to produce living microtissues composed of cell-laden microgels in ultra-high throughput, which could be photo-annealed into a monolithic living matter. Annealed microtissues inherently give rise to an open and interconnected pore network within the resulting living matter. Interestingly, utilizing soft microgels enables microgel deformation, which leads to the uniform formation of capillary-sized pores. Importantly, the ultra-high throughput nature underlying the microtissue formation uniquely facilitates scalable production of living tissues of clinically relevant sizes (>1 cm3 ) with an integrated high-density capillary network. In short, PALM generates monolithic, microporous, modular tissues that meet the previously unsolved need for large engineered tissues containing high-density vascular networks, which is anticipated to advance the fields of engineered organs, regenerative medicine, and drug screening |
Author | Gensheimer, Tarek Haugen, Håvard Jostein Leijten, Jeroen van der Meer, Andries Carlson, Andreas Koch, Timo Nogueira, Liebert Parreiras Schot, Maik Becker, Malin Paggi, Carlo Alberto Gomes, Francisca |
Author_xml | – sequence: 1 fullname: Schot, Maik – sequence: 2 fullname: Becker, Malin – sequence: 3 fullname: Paggi, Carlo Alberto – sequence: 4 fullname: Gomes, Francisca – sequence: 5 fullname: Koch, Timo – sequence: 6 fullname: Gensheimer, Tarek – sequence: 7 fullname: Nogueira, Liebert Parreiras – sequence: 8 fullname: Carlson, Andreas – sequence: 9 fullname: van der Meer, Andries – sequence: 10 fullname: Haugen, Håvard Jostein – sequence: 11 fullname: Leijten, Jeroen |
BookMark | eNqNjTFuAjEQRa2ISFlI7jAXsOSF9Yqto0QpKdKjkRnYAe8Y2QMRbU4eI3GANO81T__PzUyS0JNpWr9sbecGPzONG1beDn23fjHzUo7OuaF3fWN-N2PSZFGEMLIcIO1h4pCTcikXKhAyoVaPfBjtjqSw3iDgmWPEfAMh_Un5BCGJIst9IfL1rglVKQMLIFxTvEykmYNl2dGZKkRrUm_zq3neYyz09vDCwOfH9_uXDZmLsmwlZdy2bu2Xlb133eofyR_T0FLf |
ContentType | Journal Article |
Copyright | info:eu-repo/semantics/openAccess |
Copyright_xml | – notice: info:eu-repo/semantics/openAccess |
DBID | 3HK |
DatabaseName | NORA - Norwegian Open Research Archives |
DatabaseTitleList | |
DeliveryMethod | fulltext_linktorsrc |
Discipline | Engineering |
EISSN | 1521-4095 |
ExternalDocumentID | 10852_106504 |
GroupedDBID | --- .3N .GA .Y3 05W 0R~ 10A 1L6 1OB 1OC 1ZS 23M 31~ 33P 3HK 3SF 3WU 4.4 4ZD 50Y 50Z 51W 51X 52M 52N 52O 52P 52S 52T 52U 52W 52X 53G 5GY 5VS 66C 6P2 6TJ 702 7PT 8-0 8-1 8-3 8-4 8-5 8UM 8WZ 930 A03 A6W AAESR AAEVG AAHHS AANLZ AAONW AASGY AAXRX AAYOK AAZKR ABCQN ABCUV ABEML ABHUG ABIJN ABJNI ABLJU ABPVW ABTAH ACAHQ ACBWZ ACCFJ ACCZN ACGFS ACIWK ACPOU ACSCC ACXBN ACXME ACXQS ADAWD ADBBV ADDAD ADEOM ADIZJ ADKYN ADMGS ADOZA ADXAS ADZMN ADZOD AEEZP AEIGN AEIMD AENEX AEQDE AETEA AEUQT AEUYR AFBPY AFFNX AFFPM AFGKR AFPWT AFVGU AFZJQ AGJLS AIURR AIWBW AJBDE AJXKR ALAGY ALMA_UNASSIGNED_HOLDINGS ALUQN AMBMR AMYDB ASPBG ATUGU AUFTA AVWKF AZBYB AZFZN AZVAB BAFTC BDRZF BFHJK BHBCM BMNLL BMXJE BNHUX BROTX BRXPI BY8 CS3 D-E D-F DCZOG DPXWK DR1 DR2 DRFUL DRSTM EBS EJD F00 F01 F04 F5P FEDTE FOJGT G-S G.N GNP GODZA H.T H.X HBH HF~ HHY HHZ HVGLF HZ~ IX1 J0M JPC KQQ LATKE LAW LC2 LC3 LEEKS LH4 LITHE LOXES LP6 LP7 LUTES LW6 LYRES M6K MEWTI MK4 MRFUL MRSTM MSFUL MSSTM MXFUL MXSTM N04 N05 N9A NDZJH NF~ NNB O66 O9- P2P P2W P2X P4D PALCI Q.N Q11 QB0 QRW R.K RIWAO RJQFR RNS ROL RWI RWM RX1 RYL SAMSI SUPJJ TN5 UB1 UPT V2E W8V W99 WBKPD WFSAM WIB WIH WIK WJL WOHZO WQJ WRC WTY WXSBR WYISQ XG1 XPP XV2 YR2 ZY4 ZZTAW ~02 ~IA ~WT |
ID | FETCH-cristin_nora_10852_1065043 |
ISSN | 0935-9648 |
IngestDate | Wed Dec 27 03:14:06 EST 2023 |
IsOpenAccess | true |
IsPeerReviewed | true |
IsScholarly | true |
Language | Norwegian |
LinkModel | OpenURL |
MergedId | FETCHMERGED-cristin_nora_10852_1065043 |
Notes | EC/HEU/759425 |
OpenAccessLink | http://hdl.handle.net/10852/106504 |
ParticipantIDs | cristin_nora_10852_106504 |
PublicationCentury | 2000 |
PublicationDate | 2023 |
PublicationDateYYYYMMDD | 2023-01-01 |
PublicationDate_xml | – year: 2023 text: 2023 |
PublicationDecade | 2020 |
PublicationTitle | Advanced materials (Weinheim) |
PublicationYear | 2023 |
SSID | ssj0009606 |
Score | 4.915913 |
Snippet | The vascular tree is crucial for the survival and function of large living tissues. Despite breakthroughs in 3D bioprinting to endow engineered tissues with... |
SourceID | cristin |
SourceType | Open Access Repository |
Title | Photo-annealing of microtissues creates high-density capillary network containing living matter in a volumetric-independent manner |
URI | http://hdl.handle.net/10852/106504 |
hasFullText | 1 |
inHoldings | 1 |
isFullTextHit | |
isPrint | |
link | http://sdu.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwtV1LS8NAEF60Jz2IT6wv5uAtRNomJulRtNKLUrCgt7JpN22g3ZU0PXj1lzuzu3lYVPTgJQkbkrD7kcnM5JtvGLvs4luEbi13uxPfxwAljN3ITzBU4W36RkdxzKlQuP8UPr5Edz2_V9Ftq7F_RRrHEGuqnP0D2uVNcQCPEXPcIuq4_RXug5nKlcvRfPK5ZTQviHSX6xVeOtpLxD3pFLsToq-jGz7mr9R9KHtzpKGFawq7aR7hzFOddFhoJU7Kj3DH2DQS93fTso9uTlRYadm-hbBtQTHAq83syaV9FqmcCerjXKYhSA3UFg-lteKhgvTxQJOpfndNp6llq8wV_WUQWa5KJpGyNRa2Z4jlItnMhik7LpKT3rXbDYwG55WwprlD0a5pyflZOHvtg1bSDKmyojNqkxdKirEYKusiH29QyTIHuvtq-TyMgsbauMqalzHcZTs2PIAbg-se25Bqn23XRCMP2PsawqASqCMMFmGoIwwlwmARhgphMAiDQRhSCRy-RhgMwocM7nvD275rZzGSaEhG9XXwjlhDKimOGbRj0RE8CFpJ4vtUkd1KgjgJYy-Mgngctpqs-e1tTn44d8q2CE6TqDpjjTxbiXO2uZysLvTqfwDrsFRf |
link.rule.ids | 230,315,782,786,887,4028 |
linkProvider | Wiley-Blackwell |
openUrl | ctx_ver=Z39.88-2004&ctx_enc=info%3Aofi%2Fenc%3AUTF-8&rfr_id=info%3Asid%2Fsummon.serialssolutions.com&rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&rft.genre=article&rft.atitle=Photo-annealing+of+microtissues+creates+high-density+capillary+network+containing+living+matter+in+a+volumetric-independent+manner&rft.jtitle=Advanced+materials+%28Weinheim%29&rft.au=Schot%2C+Maik&rft.au=Becker%2C+Malin&rft.au=Paggi%2C+Carlo+Alberto&rft.au=Gomes%2C+Francisca&rft.date=2023&rft.issn=0935-9648&rft.eissn=1521-4095&rft.externalDBID=n%2Fa&rft.externalDocID=10852_106504 |
thumbnail_l | http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/lc.gif&issn=0935-9648&client=summon |
thumbnail_m | http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/mc.gif&issn=0935-9648&client=summon |
thumbnail_s | http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/sc.gif&issn=0935-9648&client=summon |