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Published on: July 13, 2016
Krüppel-like Factor 5 Regulates Stemness, Lineage Specification, and Regeneration of Intestinal Epithelial Stem Cells
Chang-Kyung Kim1, Madhurima Saxena2, Kasmika Maharjan1
1Department of Medicine, Stony Brook University Renaissance School of Medicine, Stony Brook, New York.
Background & Aims:
Self-renewal and multipotent differentiation are cardinal properties of intestinal stem cells (ISCs), mediated in part by WNT and NOTCH signaling. Although these pathways are well characterized, the molecular mechanisms that control the 'stemness' of ISCs are still not well defined. Here, we investigated the role of Krüppel-like factor 5 (KLF5) in regulating ISC functions.
Methods:
We performed studies in adult Lgr5EGFP-IRES-creERT2;Rosa26LSLtdTomato (Lgr5Ctrl) and Lgr5EGFP-IRES-creERT2;Klf5fl/fl;Rosa26LSLtdTomato (Lgr5ΔKlf5) mice. Mice were injected with tamoxifen to activate Cre recombinase, which deletes Klf5 from the intestinal epithelium in Lgr5ΔKlf5 but not Lgr5Crtl mice. In experiments involving irradiation, mice were subjected to 12 Gy total body irradiation (TBI). Tissues were collected for immunofluorescence (IF) analysis and next generation sequencing. Oganoids were derived from fluoresecence activated cell sorted- (FACS-) single cells from tamoxifen-treated Lgr5ΔKlf5 or Lgr5Crtl mice and examined by immunofluorescence stain.
Results:
Lgr5+ ISCs lacking KLF5 proliferate faster than control ISCs but fail to self-renew, resulting in a depleted ISC compartment. Transcriptome analysis revealed that Klf5-null Lgr5+ cells lose ISC identity and prematurely differentiate. Following irradiation injury, which depletes Lgr5+ ISCs, reserve Klf5-null progenitor cells fail to dedifferentiate and regenerate the epithelium. Absence of KLF5 inactivates numerous selected enhancer elements and direct transcriptional targets including canonical WNT- and NOTCH-responsive genes. Analysis of human intestinal tissues showed increased levels of KLF5 in the regenerating epithelium as compared to those of healthy controls.
Conclusion:
We conclude that ISC self-renewal, lineage specification, and precursor dedifferentiation require KLF5, by its ability to regulate epigenetic and transcriptional activities of ISC-specific gene sets. These findings have the potential for modulating ISC functions by targeting KLF5 in the intestinal epithelium.
Insights
Krüppel-like factor 5 (KLF5) is essential for intestinal stem cell (ISC) self-renewal and regeneration. Its absence leads to faster proliferation but impaired self-renewal and differentiation, impacting epithelial repair.
Area of Science:
- Stem cell biology
- Gastrointestinal biology
- Molecular genetics
Background:
- Intestinal stem cells (ISCs) possess self-renewal and differentiation capabilities crucial for gut homeostasis.
- WNT and NOTCH signaling pathways are known regulators of ISC function, but underlying molecular mechanisms remain incompletely understood.
- Krüppel-like factor 5 (KLF5) role in ISC regulation was investigated.
Purpose of the Study:
- To elucidate the function of Krüppel-like factor 5 (KLF5) in maintaining intestinal stem cell (ISC) identity and function.
- To understand the molecular mechanisms by which KLF5 regulates ISC self-renewal and differentiation.
- To assess the impact of KLF5 loss on intestinal epithelial regeneration after injury.
Main Methods:
- Utilized genetically engineered mouse models (Lgr5ΔKlf5 and Lgr5Ctrl) with tamoxifen-inducible Klf5 deletion.
- Administered tamoxifen to induce Cre recombinase activity and delete Klf5 in Lgr5+ ISCs.
- Performed whole-body irradiation (TBI) to induce intestinal injury.
- Conducted immunofluorescence (IF) analysis and next-generation sequencing on isolated intestinal tissues and organoids.
- Employed fluorescence-activated cell sorting (FACS) for single-cell isolation.
Main Results:
- Klf5-deficient ISCs exhibited accelerated proliferation but failed self-renewal, leading to ISC compartment depletion.
- Transcriptome analysis indicated loss of ISC identity and premature differentiation in Klf5-null ISCs.
- Following irradiation, Klf5-null progenitor cells were unable to dedifferentiate and regenerate the intestinal epithelium.
- KLF5 absence inactivated key enhancer elements and WNT/NOTCH target genes.
- Human intestinal tissues showed elevated KLF5 levels in regenerating epithelia compared to healthy controls.
Conclusions:
- Klf5 is indispensable for ISC self-renewal, lineage specification, and progenitor cell dedifferentiation.
- KLF5 regulates ISC functions by controlling epigenetic and transcriptional activities of stem cell-specific genes.
- Targeting KLF5 presents a potential strategy for modulating intestinal stem cell functions.
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