Department of Biomedical Engineering, Vanderbilt University, Nashville, TN, USA.
Department of Cell and Developmental Biology, Vanderbilt University School of Medicine, Nashville, TN, USA; Epithelial Biology Center, Vanderbilt University Medical Center, Nashville, TN, USA.
Acta Biomater. 2023 Jun;163:365-377. doi: 10.1016/j.actbio.2022.04.031. Epub 2022 Apr 25.
The role of intratumor heterogeneity is becoming increasingly apparent in part due to expansion in single cell technologies. Clinically, tumor heterogeneity poses several obstacles to effective cancer therapy dealing with biomarker variability and treatment responses. Matrix stiffening is known to occur during tumor progression and contribute to pathogenesis in several cancer hallmarks, including tumor angiogenesis and metastasis. However, the effects of matrix stiffening on intratumor heterogeneity have not been thoroughly studied. In this study, we applied single-cell RNA sequencing to investigate the differences in the transcriptional landscapes between stiff and compliant MMTV-PyMT mouse mammary tumors. We found similar compositions of cancer and stromal subpopulations in compliant and stiff tumors but differential intercellular communication and a significantly higher concentration of tumor-promoting, M2-like macrophages in the stiffer tumor microenvironments. Interestingly, we found that cancer cells seeded on stiffer substrates recruited more macrophages. Furthermore, elevated matrix stiffness increased Colony Stimulating Factor 1 (CSF-1) expression in breast cancer cells and reduction of CSF-1 expression on stiffer substrates reduced macrophage recruitment. Thus, our results demonstrate that tissue phenotypes were conserved between stiff and compliant tumors but matrix stiffening altered cell-cell interactions which may be responsible for shifting the phenotypic balance of macrophages residing in the tumor microenvironment towards a pro-tumor progression M2 phenotype. STATEMENT OF SIGNIFICANCE: Cells within tumors are highly heterogeneous, posing challenges with treatment and recurrence. While increased tissue stiffness can promote several hallmarks of cancer, its effects on tumor heterogeneity are unclear. We used single-cell RNA sequencing to investigate the differences in the transcriptional landscapes between stiff and compliant MMTV-PyMT mouse mammary tumors. We found similar compositions of cancer and stromal subpopulations in compliant and stiff tumors but differential intercellular communication and a significantly higher concentration of tumor-promoting, M2-like macrophages in the stiffer tumor microenvironments. Using a biomaterial-based platform, we found that cancer cells seeded on stiffer substrates recruited more macrophages, supporting our in vivo findings. Together, our results demonstrate a key role of matrix stiffness in affecting cell-cell communication and macrophage recruitment.
肿瘤内异质性的作用日益明显,部分原因是单细胞技术的扩展。临床上,肿瘤异质性对有效癌症治疗造成了几个障碍,涉及生物标志物的可变性和治疗反应。众所周知,在肿瘤进展过程中会发生基质变硬,并导致几种癌症特征的发病机制,包括肿瘤血管生成和转移。然而,基质变硬对肿瘤内异质性的影响尚未得到彻底研究。在这项研究中,我们应用单细胞 RNA 测序来研究刚性和顺应性 MMTV-PyMT 小鼠乳腺肿瘤之间转录景观的差异。我们发现在顺应性和刚性肿瘤中,癌症和基质亚群的组成相似,但细胞间通讯存在差异,并且在更硬的肿瘤微环境中存在更高浓度的促肿瘤、M2 样巨噬细胞。有趣的是,我们发现,在更硬的基质上接种的癌细胞招募了更多的巨噬细胞。此外,升高的基质硬度增加了乳腺癌细胞中集落刺激因子 1(CSF-1)的表达,而在更硬的基质上降低 CSF-1 的表达则减少了巨噬细胞的募集。因此,我们的结果表明,刚性和顺应性肿瘤之间保持了组织表型的一致性,但基质变硬改变了细胞间相互作用,这可能是导致驻留在肿瘤微环境中的巨噬细胞表型平衡向促肿瘤进展的 M2 表型转移的原因。
肿瘤内的细胞高度异质,这给治疗和复发带来了挑战。虽然组织硬度的增加可以促进癌症的几个特征,但它对肿瘤异质性的影响尚不清楚。我们使用单细胞 RNA 测序来研究刚性和顺应性 MMTV-PyMT 小鼠乳腺肿瘤之间转录景观的差异。我们发现顺应性和刚性肿瘤中癌症和基质亚群的组成相似,但细胞间通讯存在差异,并且在更硬的肿瘤微环境中存在更高浓度的促肿瘤、M2 样巨噬细胞。使用基于生物材料的平台,我们发现接种在更硬基质上的癌细胞招募了更多的巨噬细胞,支持了我们的体内发现。总之,我们的研究结果表明,基质硬度在影响细胞间通讯和巨噬细胞募集方面起着关键作用。