Reduced Notch1 Cleavage Promotes the Development of Pulmonary Hypertension
Shumin Wang1, Guofu Zhu2, Dongyang Jiang2
1Aab Cardiovascular Research Institute and Department of Medicine, University of Rochester School of Medicine and Dentistry, NY (S.W., J.R., Y.R., T.N., R.J.W., A.M., J.P.).
Abstract:
Clinical trials of Dll4 (Delta-like 4) neutralizing antibodies (Dll4nAbs) in cancer patients are ongoing. Surprisingly, pulmonary hypertension (PH) occurs in 14% to 18% of patients treated with Dll4nAbs, but the mechanisms have not been studied. Here, PH progression was measured in mice treated with Dll4nAbs. We detected Notch signaling in lung tissues and analyzed pulmonary vascular permeability and inflammation. Notch target gene array was performed on adult human pulmonary microvascular endothelial cells (ECs) after inhibiting Notch cleavage. Similar mechanisms were studied in PH mouse models and pulmonary arterial hypertension patients. The rescue effects of constitutively activated Notch1 in vivo were also measured. We observed that Dll4nAbs induced PH in mice as indicated by significantly increased right ventricular systolic pressure, as well as pulmonary vascular and right ventricular remodeling. Mechanistically, Dll4nAbs inhibited Notch1 cleavage and subsequently impaired lung endothelial barrier function and increased immune cell infiltration in vessel walls. In vitro, Notch targeted genes' expression related to cell growth and inflammation was decreased in human pulmonary microvascular ECs after the Notch1 inactivation. In lungs of PH mouse models and pulmonary arterial hypertension patients, Notch1 cleavage was inhibited. Consistently, EC cell-cell junction was leaky, and immune cell infiltration increased in PH mouse models. Overexpression activated Notch1-attenuated progression of PH in mice. In conclusion, Dll4nAbs led to PH development in mice by impaired EC barrier function and increased immune cell infiltration through inhibition of Notch1 cleavage in lung ECs. Reduced Notch1 cleavage in lung ECs could be an underlying mechanism of PH pathogenesis.
Insights
Delta-like 4 (Dll4) neutralizing antibodies (Dll4nAbs) cause pulmonary hypertension (PH) by impairing lung endothelial barrier function and increasing immune cell infiltration via Notch1 inhibition.
Area of Science:
- Cardiovascular Research
- Oncology
- Immunology
Background:
- Clinical trials using Dll4 neutralizing antibodies (Dll4nAbs) for cancer treatment are underway.
- A significant percentage of patients (14-18%) develop pulmonary hypertension (PH) following Dll4nAbs treatment, with underlying mechanisms uninvestigated.
Purpose of the Study:
- To investigate the mechanisms by which Dll4nAbs induce pulmonary hypertension (PH) in a preclinical mouse model.
- To analyze the role of Notch signaling in Dll4nAbs-induced PH and its relevance in human pulmonary arterial hypertension (PAH).
Main Methods:
- PH progression was evaluated in mice treated with Dll4nAbs, including right ventricular systolic pressure and vascular remodeling.
- Notch signaling, pulmonary vascular permeability, and inflammation were assessed in lung tissues.
- In vitro studies on human pulmonary microvascular endothelial cells (ECs) and in vivo rescue experiments with activated Notch1 were performed.
Main Results:
- Dll4nAbs treatment significantly increased right ventricular systolic pressure and induced pulmonary vascular and right ventricular remodeling in mice.
- Dll4nAbs inhibited Notch1 cleavage, leading to impaired lung endothelial barrier function and increased immune cell infiltration.
- Reduced Notch1 cleavage, leaky endothelial cell-cell junctions, and increased immune cell infiltration were observed in PH mouse models and human PAH patients.
Conclusions:
- Dll4nAbs induce PH by inhibiting Notch1 cleavage in lung ECs, compromising endothelial barrier function and promoting immune cell infiltration.
- Inhibition of Notch1 cleavage in lung ECs represents a potential underlying mechanism in the pathogenesis of PH.
- Activating Notch1 signaling in vivo attenuated the progression of PH in mice, suggesting a therapeutic target.
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