Engineered matrices reveal stiffness-mediated chemoresistance in patient-derived pancreatic cancer organoids

IF 37.2 1区 材料科学 Q1 CHEMISTRY, PHYSICAL Nature Materials Pub Date : 2024-07-04 DOI:10.1038/s41563-024-01908-x
Bauer L. LeSavage, Daiyao Zhang, Carla Huerta-López, Aidan E. Gilchrist, Brad A. Krajina, Kasper Karlsson, Amber R. Smith, Kremena Karagyozova, Katarina C. Klett, Michelle S. Huang, Christopher Long, Gernot Kaber, Christopher M. Madl, Paul L. Bollyky, Christina Curtis, Calvin J. Kuo, Sarah C. Heilshorn
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Abstract

Pancreatic ductal adenocarcinoma (PDAC) is characterized by its fibrotic and stiff extracellular matrix. However, how the altered cell/extracellular-matrix signalling contributes to the PDAC tumour phenotype has been difficult to dissect. Here we design and engineer matrices that recapitulate the key hallmarks of the PDAC tumour extracellular matrix to address this knowledge gap. We show that patient-derived PDAC organoids from three patients develop resistance to several clinically relevant chemotherapies when cultured within high-stiffness matrices mechanically matched to in vivo tumours. Using genetic barcoding, we find that while matrix-specific clonal selection occurs, cellular heterogeneity is not the main driver of chemoresistance. Instead, matrix-induced chemoresistance occurs within a stiff environment due to the increased expression of drug efflux transporters mediated by CD44 receptor interactions with hyaluronan. Moreover, PDAC chemoresistance is reversible following transfer from high- to low-stiffness matrices, suggesting that targeting the fibrotic extracellular matrix may sensitize chemoresistant tumours. Overall, our findings support the potential of engineered matrices and patient-derived organoids for elucidating extracellular matrix contributions to human disease pathophysiology. Patient-derived pancreatic cancer organoids grown in engineered matrices acquire chemoresistance due to the increased expression of drug efflux transporters, promoted by CD44 receptor interactions with hyaluronan in the stiffer tumoural matrix.

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工程基质揭示了源自患者的胰腺癌器官组织中由硬度介导的化疗抗性。
胰腺导管腺癌(PDAC)以其纤维化和僵硬的细胞外基质为特征。然而,细胞/细胞外基质信号的改变是如何导致 PDAC 肿瘤表型的一直是个难题。在这里,我们设计了能再现 PDAC 肿瘤细胞外基质关键特征的基质,以填补这一知识空白。我们的研究表明,当在与体内肿瘤机械匹配的高硬度基质中培养时,来自三名患者的PDAC器官组织会对几种临床相关的化疗产生耐药性。通过使用基因条形码,我们发现虽然发生了基质特异性克隆选择,但细胞异质性并不是化疗耐药性的主要驱动因素。相反,由于 CD44 受体与透明质酸相互作用介导的药物外流转运体表达增加,基质诱导的化疗耐药性在僵硬的环境中发生。此外,从高刚性基质转移到低刚性基质后,PDAC的化疗耐药性是可逆的,这表明靶向纤维化细胞外基质可能会使化疗耐药性肿瘤变得敏感。总之,我们的研究结果支持了工程基质和患者来源的器官组织在阐明细胞外基质对人类疾病病理生理学的贡献方面的潜力。
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来源期刊
Nature Materials
Nature Materials 工程技术-材料科学:综合
CiteScore
62.20
自引率
0.70%
发文量
221
审稿时长
3.2 months
期刊介绍: Nature Materials is a monthly multi-disciplinary journal aimed at bringing together cutting-edge research across the entire spectrum of materials science and engineering. It covers all applied and fundamental aspects of the synthesis/processing, structure/composition, properties, and performance of materials. The journal recognizes that materials research has an increasing impact on classical disciplines such as physics, chemistry, and biology. Additionally, Nature Materials provides a forum for the development of a common identity among materials scientists and encourages interdisciplinary collaboration. It takes an integrated and balanced approach to all areas of materials research, fostering the exchange of ideas between scientists involved in different disciplines. Nature Materials is an invaluable resource for scientists in academia and industry who are active in discovering and developing materials and materials-related concepts. It offers engaging and informative papers of exceptional significance and quality, with the aim of influencing the development of society in the future.
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