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Updated: Aug 12, 2025

Quantification of Efferocytosis by Single-cell Fluorescence Microscopy
Published on: August 18, 2018
Caspase-9 driven murine model of selective cell apoptosis and efferocytosis
Lena Batoon1, Amy J Koh1, Rahasudha Kannan1
1Department of Periodontics and Oral Medicine, University of Michigan, School of Dentistry, Ann Arbor, MI, USA.
Abstract:
Apoptosis and efficient efferocytosis are integral to growth, development, and homeostasis. The heterogeneity of these mechanisms in different cells across distinct tissues renders it difficult to develop broadly applicable in vivo technologies. Here, we introduced a novel inducible caspase-9 (iCasp9) mouse model which allowed targeted cell apoptosis and further facilitated investigation of concomitant efferocytosis. We generated iCasp9+/+ mice with conditional expression of chemically inducible caspase-9 protein that is triggered in the presence of Cre recombinase. In vitro, bone marrow cells from iCasp9+/+ mice showed expression of the iCasp9 protein when transduced with Cre-expressing adenovirus. Treatment of these cells with the chemical dimerizer (AP20187/AP) resulted in iCasp9 processing and cleaved caspase-3 upregulation, indicating successful apoptosis induction. The in vivo functionality and versatility of this model was demonstrated by crossing iCasp9+/+ mice with CD19-Cre and Osteocalcin (OCN)-Cre mice to target CD19+ B cells or OCN+ bone-lining osteoblasts. Immunofluorescence and/or immunohistochemical staining in combination with histomorphometric analysis of EGFP, CD19/OCN, and cleaved caspase-3 expression demonstrated that a single dose of AP effectively induced apoptosis in CD19+ B cells or OCN+ osteoblasts. Examination of the known efferocytes in the target tissues showed that CD19+ cell apoptosis was associated with infiltration of dendritic cells into splenic B cell follicles. In the bone, where efferocytosis remains under-explored, the use of iCasp9 provided direct in vivo evidence that macrophages are important mediators of apoptotic osteoblast clearance. Collectively, this study presented the first mouse model of iCasp9 which achieved selective apoptosis, allowing examination of subsequent efferocytosis. Given its unique feature of being controlled by any Cre-expressing mouse lines, the potential applications of this model are extensive and will bring forth more insights into the diversity of mechanisms and cellular effects induced by apoptosis including the physiologically important efferocytic process that follows.
Insights
This study introduces a novel inducible caspase-9 (iCasp9) mouse model for targeted apoptosis and efferocytosis research. The model enables selective cell death induction, facilitating the study of efferocytosis in various tissues.
Area of Science:
- Cell Biology
- Immunology
- Genetics
Background:
- Apoptosis and efferocytosis are crucial for tissue homeostasis and development.
- Investigating these processes in vivo is challenging due to cellular and tissue heterogeneity.
- Existing models lack the specificity for targeted apoptosis and subsequent efferocytosis studies.
Purpose of the Study:
- To develop and validate a novel inducible caspase-9 (iCasp9) mouse model for targeted apoptosis induction.
- To investigate the subsequent efferocytosis of apoptotic cells in vivo.
- To explore the role of efferocytosis in different tissues, including bone.
Main Methods:
- Generation of iCasp9+/+ mice with Cre-inducible caspase-9 expression.
- In vitro validation of apoptosis induction in bone marrow cells using a chemical inducer (AP20187/AP).
- In vivo validation by crossing iCasp9+/+ mice with CD19-Cre and Osteocalcin (OCN)-Cre mice to target specific cell populations (B cells and osteoblasts).
- Analysis using immunofluorescence, immunohistochemistry, and histomorphometry.
Main Results:
- Successful induction of apoptosis in CD19+ B cells and OCN+ osteoblasts in vivo using the iCasp9 model.
- Observed infiltration of dendritic cells into splenic B cell follicles following CD19+ B cell apoptosis.
- Provided in vivo evidence for macrophage-mediated clearance of apoptotic osteoblasts in bone tissue.
- Demonstrated the model's ability to facilitate the study of efferocytosis.
Conclusions:
- The novel iCasp9 mouse model allows for selective, inducible apoptosis and subsequent efferocytosis studies.
- This model is versatile and can be applied across various Cre-expressing mouse lines for diverse research applications.
- The findings provide new insights into the mechanisms of efferocytosis in different physiological contexts, particularly in bone.
- The study highlights the importance of macrophages in clearing apoptotic osteoblasts.
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