TY - JOUR
T1 - Targeted MSC therapy restores implantation by spatially reconstituting the RSPO1 niche via IL10-CXCL12 signaling
AU - Dang, Yue
AU - Zhou, Congting
AU - Li, Chuyu
AU - Wei, Mengru
AU - Li, Shiqi
AU - Cui, Jiawen
AU - Zhou, Qingqing
AU - Yu, Ying
AU - Wang, Feiyi
AU - Shang, Xin
AU - Li, Yantong
AU - Wang, Jing
AU - Zhou, Fang
AU - Wang, Guangji
AU - Liu, Jiali
N1 - Publisher Copyright:
© 2026 The Authors
PY - 2026/8
Y1 - 2026/8
N2 - Endometrial injury (EI) is a primary cause of refractory infertility characterized by defective glandular regeneration and impaired receptivity, for which effective regenerative therapies remain limited. Here, we identify the depletion of stromal-derived RSPO1 as a conserved molecular defect driving the loss of glandular stemness in both murine models and patient samples. We further demonstrate that this regeneration failure is rooted in the disruption of the spatial organization within the peri-glandular niche. Mechanistically, injured glandular epithelia act as spatial regulators by activating a paracrine IL10-IL10R-CD26 signaling cascade that enzymatically shapes a localized CXCL12 gradient. This chemokine-guided mechanism governs the selective recruitment of CXCR4⁺ mesenchymal stromal cells (MSCs) to peri-glandular domains. Crucially, we reveal that MSC-mediated repair operates via a spatially restricted mechanism of action, where therapeutic efficacy hinges on precise niche targeting. Upon niche localization, MSC-delivered RSPO1 reconstitutes WNT-driven glandular regeneration and implantation competence. Leveraging this endogenous spatial guidance, we engineered CXCR4/RSPO1 dual-enhanced MSCs to overcome delivery constraints, significantly improving homing efficiency and functional recovery in refractory EI models. Validation in patient-derived biopsies and organoids confirms the translational relevance of the IL10-CXCL12-RSPO1 regenerative axis. Collectively, these findings establish spatially targeted cell delivery as a precision pharmacotherapy, providing a mechanistic foundation for treating refractory infertility.
AB - Endometrial injury (EI) is a primary cause of refractory infertility characterized by defective glandular regeneration and impaired receptivity, for which effective regenerative therapies remain limited. Here, we identify the depletion of stromal-derived RSPO1 as a conserved molecular defect driving the loss of glandular stemness in both murine models and patient samples. We further demonstrate that this regeneration failure is rooted in the disruption of the spatial organization within the peri-glandular niche. Mechanistically, injured glandular epithelia act as spatial regulators by activating a paracrine IL10-IL10R-CD26 signaling cascade that enzymatically shapes a localized CXCL12 gradient. This chemokine-guided mechanism governs the selective recruitment of CXCR4⁺ mesenchymal stromal cells (MSCs) to peri-glandular domains. Crucially, we reveal that MSC-mediated repair operates via a spatially restricted mechanism of action, where therapeutic efficacy hinges on precise niche targeting. Upon niche localization, MSC-delivered RSPO1 reconstitutes WNT-driven glandular regeneration and implantation competence. Leveraging this endogenous spatial guidance, we engineered CXCR4/RSPO1 dual-enhanced MSCs to overcome delivery constraints, significantly improving homing efficiency and functional recovery in refractory EI models. Validation in patient-derived biopsies and organoids confirms the translational relevance of the IL10-CXCL12-RSPO1 regenerative axis. Collectively, these findings establish spatially targeted cell delivery as a precision pharmacotherapy, providing a mechanistic foundation for treating refractory infertility.
KW - Endometrial Injury
KW - IL10-CXCL12-RSPO1 Axis
KW - Mesenchymal Stromal Cells
KW - Peri-glandular Niche
KW - Spatial Niche Reconstruction
KW - Tissue Regeneration
UR - https://www.scopus.com/pages/publications/105041038808
U2 - 10.1016/j.phrs.2026.108249
DO - 10.1016/j.phrs.2026.108249
M3 - 文章
C2 - 42155786
AN - SCOPUS:105041038808
SN - 1043-6618
VL - 230
JO - Pharmacological Research
JF - Pharmacological Research
M1 - 108249
ER -