To understand the effects of these persistent changes in the ECM, the researchers used miniature three-dimensional versions of the intestine, known as organoids, which are grown in the laboratory from stem cells. Biton’s laboratory specializes in this approach, which makes it possible to identify factors that promote or impair normal tissue regeneration.
Biton’s lab had previously found that chronic inflammatory bowel diseases are associated with changes in stem cell function. The researchers therefore used organoids to investigate whether the ECM might be responsible for these changes. They grew healthy stem cells on disrupted ECM sampled from mice during and after acute intestinal inflammation. Instead of maturing into intestinal lining with a normal three-dimensional structure, the stem cells exposed to the damaged matrix formed a shapeless sheet. RNA sequencing revealed that rather than developing into normal intestinal cells, the stem cells had matured into inflammation-fueling epithelial cells that secrete chemical signals attracting immune cells, thereby promoting chronic intestinal inflammation.
“Growing stem cells as organoids within a disrupted extracellular matrix was enough to change their fate,” Biton says. “Using a single-cell RNA sequencing database and seven biopsies from patients with ulcerative colitis, we found that these same pro-inflammatory epithelial cells also characterize inflamed regions in human patients. These findings make it clear that the extracellular matrix plays a critical role in chronic inflammation and could potentially make it possible to predict which regions will develop inflammation or experience a future flare-up. More broadly, the new study reveals just how central the ECM is in creating a microenvironment, or niche, that supports stem cell regeneration.”