Photon Upconversion Hydrogels for 3D Optogenetics

被引:21
|
作者
Meir, Rinat [1 ]
Hirschhorn, Tal [2 ]
Kim, Sungsoo [3 ]
Fallon, Kealan J. [1 ]
Churchill, Emily M. [1 ]
Wu, Dino [1 ]
Yang, Hee Won [3 ]
Stockwell, Brent R. [1 ,2 ]
Campos, Luis M. [1 ]
机构
[1] Columbia Univ, Dept Chem, New York, NY 10027 USA
[2] Columbia Univ, Dept Biol Sci, New York, NY 10027 USA
[3] Columbia Univ, Med Ctr, Dept Pathol & Cell Biol, New York, NY 10032 USA
基金
美国国家科学基金会;
关键词
biomaterials; hydrogels; optogenetics; photon upconversion; triplet-triplet annihilation; INFRARED LIGHT; DRUG-DELIVERY; BIOMATERIALS; DIFFERENTIATION; PENETRATION; CELLS; CUES;
D O I
10.1002/adfm.202010907
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The ability to optically induce biological responses in 3D has been dwarfed by the physical limitations of visible light penetration to trigger photochemical processes. However, many biological systems are relatively transparent to low-energy light, which does not provide sufficient energy to induce photochemistry in 3D. To overcome this challenge, hydrogels that are capable of converting red or near-IR (NIR) light into blue light within the cell-laden 3D scaffolds are developed. The upconverted light can then excite optically active proteins in cells to trigger a photochemical response. The hydrogels operate by triplet-triplet annihilation upconversion. As proof-of-principle, it is found that the hydrogels trigger an optogenetic response by red/NIR irradiation of HeLa cells that have been engineered to express the blue-light sensitive protein Cry2olig. While it is remarkable to photoinduce the clustering of Cry2olig with blanket NIR irradiation in 3D, it is also demonstrated how the hydrogels trigger clustering within a single cell with great specificity and spatiotemporal control. In principle, these hydrogels may allow for photochemical control of cell function within 3D scaffolds, which can lead to a wealth of fundamental studies and biochemical applications.
引用
收藏
页数:8
相关论文
共 50 条
  • [31] DLP 3D Printing Meets Lignocellulosic Biopolymers: Carboxymethyl Cellulose Inks for 3D Biocompatible Hydrogels
    Melilli, Giuseppe
    Carmagnola, Irene
    Tonda-Turo, Chiara
    Pirri, Fabrizio
    Ciardelli, Gianluca
    Sangermano, Marco
    Hakkarainen, Minna
    Chiappone, Annalisa
    POLYMERS, 2020, 12 (08)
  • [32] Near-Infrared Optogenetic Genome Engineering Based on Photon-Upconversion Hydrogels
    Sasaki, Yoichi
    Oshikawa, Mio
    Bharmoria, Pankaj
    Kouno, Hironori
    Hayashi-Takagi, Akiko
    Sato, Moritoshi
    Ajioka, Itsuki
    Yanai, Nobuhiro
    Kimizuka, Nobuo
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2019, 58 (49) : 17827 - 17833
  • [33] Gelatin-Based Hydrogels for Organ 3D Bioprinting
    Wang, Xiaohong
    Ao, Qiang
    Tian, Xiaohong
    Fan, Jun
    Tong, Hao
    Hou, Weijian
    Bai, Shuling
    POLYMERS, 2017, 9 (09)
  • [34] In situ thermal gelling polypeptide for chondrocytes 3D culture
    Choi, Bo Gyu
    Park, Min Hee
    Cho, So-Hye
    Joo, Min Kyung
    Oh, Hye Jin
    Kim, Eun Hye
    Park, Kwideok
    Han, Dong Keun
    Jeong, Byeongmoon
    BIOMATERIALS, 2010, 31 (35) : 9266 - 9272
  • [35] Polysaccharide hydrogels for multiscale 3D printing of pullulan scaffolds
    Della Giustina, Gioia
    Gandin, Alessandro
    Brigo, Laura
    Panciera, Tito
    Giulitti, Stefano
    Sgarbossa, Paolo
    D'Alessandro, Delfo
    Trombi, Luisa
    Danti, Serena
    Brusatin, Giovanna
    MATERIALS & DESIGN, 2019, 165
  • [36] 3D culture of ovarian follicles in granular and nanofibrillar hydrogels
    Mihajlovic, Marko
    Pasztor-Janoska, Dora Katalin
    Cadenas, Jesus
    Adrados, Cristina Subiran
    Andersen, Claus Yding
    Kristensen, Stine Gry
    Lind, Johan Ulrik
    BIOMATERIALS ADVANCES, 2024, 164
  • [37] 3D bioprinted silk fibroin hydrogels for tissue engineering
    Kim, Soon Hee
    Hong, Heesun
    Ajiteru, Olatunji
    Sultan, Md Tipu
    Lee, Young Jin
    Lee, Ji Seung
    Lee, Ok Joo
    Lee, Hanna
    Park, Hae Sang
    Choi, Kyu Young
    Lee, Joong Seob
    Ju, Hyung Woo
    Hong, In-Sun
    Park, Chan Hum
    NATURE PROTOCOLS, 2021, 16 (12) : 5484 - 5532
  • [38] 3D bioprinting of gellan gum-based hydrogels tethered with laminin-derived peptides for improved cellular behavior
    Alheib, Omar
    da Silva, Lucilia P.
    Youn, Yun Hee
    Kwon, Il Keun
    Reis, Rui L.
    Correlo, Vitor M.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2022, 110 (10) : 1655 - 1668
  • [39] 3D Culture of Chondrocytes in Gelatin Hydrogels with Different Stiffness
    Li, Xiaomeng
    Chen, Shangwu
    Li, Jingchao
    Wang, Xinlong
    Zhang, Jing
    Kawazoe, Naoki
    Chen, Guoping
    POLYMERS, 2016, 8 (08)
  • [40] A Generalizable Strategy for the 3D Bioprinting of Hydrogels from Nonviscous Photo-crosslinkable Inks
    Ouyang, Liliang
    Highley, Christopher B.
    Sun, Wei
    Burdick, Jason A.
    ADVANCED MATERIALS, 2017, 29 (08)