3D bioprinted tumor model: a prompt and convenient platform for overcoming immunotherapy resistance by recapitulating the tumor microenvironment

被引:14
作者
Zhang, Zhangyi [1 ]
Chen, Xuebo [2 ]
Gao, Sujie [3 ]
Fang, Xuedong [2 ]
Ren, Shengnan [4 ]
机构
[1] Jilin Univ, Bethune Clin Med Coll 3, Changchun 130021, Peoples R China
[2] Jilin Univ, China Japan Union Hosp, Dept Gastrointestinal Colorectal & Anal Surg, 126 Xiantai St, Changchun 130033, Peoples R China
[3] Jilin Univ, China Japan Union Hosp, Dept Anesthesiol, Changchun 130033, Peoples R China
[4] Kunming Med Univ, Peking Univ, Canc Hosp Yunnan, Yunnan Canc Hosp,Affiliated Hosp 3,Dept Breast Sur, 519 Kunzhou St, Kunming 650118, Peoples R China
关键词
Bioprinting; In vitro tumor model; Cancer immunotherapy; Acquired resistance; Personalized medication; REGULATORY T-CELLS; CANCER; EXTRUSION; IMPROVES;
D O I
10.1007/s13402-024-00935-9
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
BackgroundCancer immunotherapy is receiving worldwide attention for its induction of an anti-tumor response. However, it has had limited efficacy in some patients who acquired resistance. The dynamic and sophisticated complexity of the tumor microenvironment (TME) is the leading contributor to this clinical dilemma. Through recapitulating the physiological features of the TME, 3D bioprinting is a promising research tool for cancer immunotherapy, which preserves in vivo malignant aggressiveness, heterogeneity, and the cell-cell/matrix interactions. It has been reported that application of 3D bioprinting holds potential to address the challenges of immunotherapy resistance and facilitate personalized medication.Conclusions and PerspectivesIn this review, we briefly summarize the contributions of cellular and noncellular components of the TME in the development of immunotherapy resistance, and introduce recent advances in 3D bioprinted tumor models that served as platforms to study the interactions between tumor cells and the TME. By constructing multicellular 3D bioprinted tumor models, cellular and noncellular crosstalk is reproduced between tumor cells, immune cells, fibroblasts, adipocytes, and the extracellular matrix (ECM) within the TME. In the future, by quickly preparing 3D bioprinted tumor models with patient-derived components, information on tumor immunotherapy resistance can be obtained timely for clinical reference. The combined application with tumoroid or other 3D culture technologies will also help to better simulate the complexity and dynamics of tumor microenvironment in vitro. We aim to provide new perspectives for overcoming cancer immunotherapy resistance and inspire multidisciplinary research to improve the clinical application of 3D bioprinting technology.
引用
收藏
页码:1113 / 1126
页数:14
相关论文
共 92 条
[1]   Patient-derived xenograft (PDX) models, applications and challenges in cancer research [J].
Abdolahi, Shahrokh ;
Ghazvinian, Zeinab ;
Muhammadnejad, Samad ;
Saleh, Mahshid ;
Asadzadeh Aghdaei, Hamid ;
Baghaei, Kaveh .
JOURNAL OF TRANSLATIONAL MEDICINE, 2022, 20 (01)
[2]   Evolution of Neoantigen Landscape during Immune Checkpoint Blockade in Non-Small Cell Lung Cancer [J].
Anagnostou, Valsamo ;
Smith, Kellie N. ;
Forde, Patrick M. ;
Niknafs, Noushin ;
Bhattacharya, Rohit ;
White, James ;
Zhang, Theresa ;
Adleff, Vilmos ;
Phallen, Jillian ;
Wali, Neha ;
Hruban, Carolyn ;
Guthrie, Violeta B. ;
Rodgers, Kristen ;
Naidoo, Jarushka ;
Kang, Hyunseok ;
Sharfman, William ;
Georgiades, Christos ;
Verde, Franco ;
Illei, Peter ;
Li, Qing Kay ;
Gabrielson, Edward ;
Brock, Malcolm V. ;
Zahnow, Cynthia A. ;
Baylin, Stephen B. ;
Scharpf, Robert B. ;
Brahmer, Julie R. ;
Karchin, Rachel ;
Pardoll, Drew M. ;
Velculescu, Victor E. .
CANCER DISCOVERY, 2017, 7 (03) :264-276
[3]   Bioinks and bioprinting technologies to make heterogeneous and biomimetic tissue constructs [J].
Ashammakhi, N. ;
Ahadian, S. ;
Xu, C. ;
Montazerian, H. ;
Ko, H. ;
Nasiri, R. ;
Barros, N. ;
Khademhosseini, A. .
MATERIALS TODAY BIO, 2019, 1
[4]   Aspiration-assisted bioprinting for precise positioning of biologics [J].
Ayan, Bugra ;
Heo, Dong Nyoung ;
Zhang, Zhifeng ;
Dey, Madhuri ;
Povilianskas, Adomas ;
Drapaca, Corina ;
Ozbolat, Ibrahim T. .
SCIENCE ADVANCES, 2020, 6 (10)
[5]   Characterization of immune responses to anti-PD-1 mono and combination immunotherapy in hematopoietic humanized mice implanted with tumor xenografts [J].
Capasso, A. ;
Lang, J. ;
Pitts, T. M. ;
Jordan, K. R. ;
Lieu, C. H. ;
Davis, S. L. ;
Diamond, J. R. ;
Kopetz, S. ;
Barbee, J. ;
Peterson, J. ;
Freed, B. M. ;
Yacob, B. W. ;
Bagby, S. M. ;
Messersmith, W. A. ;
Slansky, J. E. ;
Pelanda, R. ;
Eckhardt, S. G. .
JOURNAL FOR IMMUNOTHERAPY OF CANCER, 2019, 7
[6]   SynNotch-CAR T cells overcome challenges of specificity, heterogeneity, and persistence in treating glioblastoma [J].
Choe, Joseph H. ;
Watchmaker, Payal B. ;
Simic, Milos S. ;
Gilbert, Ryan D. ;
Li, Aileen W. ;
Krasnow, Nira A. ;
Downey, Kira M. ;
Yu, Wei ;
Carrera, Diego A. ;
Celli, Anna ;
Cho, Juhyun ;
Briones, Jessica D. ;
Duecker, Jason M. ;
Goretsky, Yitzhar E. ;
Dannenfelser, Ruth ;
Cardarelli, Lia ;
Troyanskaya, Olga ;
Sidhu, Sachdev S. ;
Roybal, Kole T. ;
Okada, Hideho ;
Lim, Wendell A. .
SCIENCE TRANSLATIONAL MEDICINE, 2021, 13 (591)
[7]   The role of tumor-associated macrophage in breast cancer biology [J].
Choi, Junjeong ;
Gyamfi, Jones ;
Jang, Haerin ;
Koo, Ja Seung .
HISTOLOGY AND HISTOPATHOLOGY, 2018, 33 (02) :133-145
[8]   Engineering a Novel 3D Printed Vascularized Tissue Model for Investigating Breast Cancer Metastasis to Bone [J].
Cui, Haitao ;
Esworthy, Timothy ;
Zhou, Xuan ;
Hann, Sung Yun ;
Glazer, Robert I. ;
Li, Rong ;
Zhang, Lijie Grace .
ADVANCED HEALTHCARE MATERIALS, 2020, 9 (15)
[9]  
Danko T., 2022, INT J MOL SCI, V23
[10]   3D bioprinting for reconstituting the cancer microenvironment [J].
Datta, Pallab ;
Dey, Madhuri ;
Ataie, Zaman ;
Unutmaz, Derya ;
Ozbolat, Ibrahim T. .
NPJ PRECISION ONCOLOGY, 2020, 4 (01)