A bioprinted sea-and-island multicellular model for dissecting human pancreatic tumor-stroma reciprocity and adaptive metabolism

IF 12.8 1区 医学 Q1 ENGINEERING, BIOMEDICAL Biomaterials Pub Date : 2024-05-24 DOI:10.1016/j.biomaterials.2024.122631
Ming Li , Sebastian Freeman , Janusz Franco-Barraza , Kathy Q. Cai , Amy Kim , Sha Jin , Edna Cukierman , Kaiming Ye
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Abstract

Pancreatic ductal adenocarcinoma (PDAC) presents a formidable clinical challenge due to its intricate microenvironment characterized by desmoplasia and complex tumor-stroma interactions. Conventional models hinder studying cellular crosstalk for therapeutic development. To recapitulate key features of PDAC masses, this study creates a novel sea-and-island PDAC tumor construct (s&i PTC). The s&i PTC consists of 3D-printed islands of human PDAC cells positioned within an interstitial extracellular matrix (ECM) populated by human cancer-associated fibroblasts (CAFs). This design closely mimics the in vivo desmoplastic architecture and nutrient-poor conditions. The model enables studying dynamic tumor-stroma crosstalk and signaling reciprocity, revealing both known and yet-to-be-discovered multicellular metabolic adaptations. Using the model, we discovered the orchestrated dynamic alterations of CAFs under nutrient stress, resembling critical in vivo human tumor niches, such as the secretion of pro-tumoral inflammatory factors. Additionally, nutrient scarcity induces dynamic alterations in the ECM composition and exacerbates poor cancer cell differentiation—features well-established in PDAC progression. Proteomic analysis unveiled the enrichment of proteins associated with aggressive tumor behavior and ECM remodeling in response to poor nutritional conditions, mimicking the metabolic stresses experienced by avascular pancreatic tumor cores. Importantly, the model's relevance to patient outcomes is evident through an inverse correlation between biomarker expression patterns in the s&i PTCs and PDAC patient survival rates. Key findings include upregulated MMPs and key ECM proteins (such as collagen 11 and TGFβ) under nutrient-avid conditions, known to be regulated by CAFs, alongside the concomitant reduction in E-cadherin expression associated with a poorly differentiated PDAC state under nutrient deprivation. Furthermore, elevated levels of hyaluronic acid (HA) and integrins in response to nutrient deprivation underscore the model's fidelity to the PDAC microenvironment. We also observed increased IL-6 and reduced α-SMA expression under poor nutritional conditions, suggesting a transition of CAFs from myofibroblastic to inflammatory phenotypes under a nutrient stress akin to in vivo niches. In conclusion, the s&i PTC represents a significant advancement in engineering clinically relevant 3D models of PDAC masses. It offers a promising platform for elucidating tumor-stroma interactions and guiding future therapeutic strategies to improve patient outcomes.

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用于解剖人类胰腺肿瘤-基质互作和适应性代谢的生物打印海岛多细胞模型
胰腺导管腺癌(PDAC)的微环境错综复杂,以脱落细胞和复杂的肿瘤-基质相互作用为特征,给临床治疗带来了巨大挑战。传统模型阻碍了细胞串联的研究,不利于治疗方法的开发。为了再现 PDAC 肿块的关键特征,本研究创建了一种新型海岛型 PDAC 肿瘤构建体(s&i PTC)。s&i PTC 由三维打印的人 PDAC 细胞岛组成,这些细胞岛位于由人癌相关成纤维细胞(CAFs)填充的细胞外基质(ECM)间质中。这种设计密切模拟了体内的去瘤结构和缺乏营养的条件。该模型能够研究动态的肿瘤-基质串扰和信号互惠,揭示已知和尚未发现的多细胞代谢适应性。利用该模型,我们发现在营养压力下,CAFs 发生了协调的动态变化,类似于体内人类肿瘤的关键龛位,如分泌促肿瘤炎症因子。此外,营养匮乏会诱导 ECM 成分的动态变化,并加剧癌细胞的不良分化--这些特征在 PDAC 的进展中已得到证实。蛋白质组分析揭示了与侵袭性肿瘤行为和 ECM 重塑相关的蛋白质在营养不良条件下的富集,模拟了无血管胰腺肿瘤核心所经历的代谢压力。重要的是,s&i PTCs 中的生物标志物表达模式与 PDAC 患者生存率之间存在反相关关系,这表明该模型与患者预后密切相关。主要发现包括:在营养缺乏的条件下,MMPs 和关键 ECM 蛋白(如胶原蛋白 11 和 TGFβ)上调(已知受 CAFs 调节),同时 E-cadherin 表达减少,这与营养缺乏条件下分化不良的 PDAC 状态有关。此外,透明质酸(HA)和整合素水平的升高也是对营养缺乏的反应,这凸显了该模型对PDAC微环境的忠实性。我们还观察到,在营养不良的条件下,IL-6表达增加,α-SMA表达减少,这表明CAFs在类似于体内壁龛的营养压力下从肌成纤维细胞表型过渡到了炎症表型。总之,s&i PTC 代表了 PDAC 肿块临床相关三维模型工程学的重大进展。它为阐明肿瘤与基质之间的相互作用、指导未来的治疗策略以改善患者预后提供了一个前景广阔的平台。
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来源期刊
Biomaterials
Biomaterials 工程技术-材料科学:生物材料
CiteScore
26.00
自引率
2.90%
发文量
565
审稿时长
46 days
期刊介绍: Biomaterials is an international journal covering the science and clinical application of biomaterials. A biomaterial is now defined as a substance that has been engineered to take a form which, alone or as part of a complex system, is used to direct, by control of interactions with components of living systems, the course of any therapeutic or diagnostic procedure. It is the aim of the journal to provide a peer-reviewed forum for the publication of original papers and authoritative review and opinion papers dealing with the most important issues facing the use of biomaterials in clinical practice. The scope of the journal covers the wide range of physical, biological and chemical sciences that underpin the design of biomaterials and the clinical disciplines in which they are used. These sciences include polymer synthesis and characterization, drug and gene vector design, the biology of the host response, immunology and toxicology and self assembly at the nanoscale. Clinical applications include the therapies of medical technology and regenerative medicine in all clinical disciplines, and diagnostic systems that reply on innovative contrast and sensing agents. The journal is relevant to areas such as cancer diagnosis and therapy, implantable devices, drug delivery systems, gene vectors, bionanotechnology and tissue engineering.
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