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Published on: May 30, 2020
Human surfactant protein D alters oxidative stress and HMGA1 expression to induce p53 apoptotic pathway in eosinophil
Lakshna Mahajan1, Hrishikesh Pandit2, Taruna Madan3
1Molecular Biochemistry and Diagnostics, Institute of Genomics and Integrative Biology (IGIB), New Delhi, Delhi, India ; Centre for Molecular Medicine, National Institute of Immunology (NII), New Delhi, India.
Abstract:
Surfactant protein D (SP-D), an innate immune molecule, has an indispensable role in host defense and regulation of inflammation. Immune related functions regulated by SP-D include agglutination of pathogens, phagocytosis, oxidative burst, antigen presentation, T lymphocyte proliferation, cytokine secretion, induction of apoptosis and clearance of apoptotic cells. The present study unravels a novel ability of SP-D to reduce the viability of leukemic cells (eosinophilic leukemic cell line, AML14.3D10; acute myeloid leukemia cell line, THP-1; acute lymphoid leukemia cell lines, Jurkat, Raji; and human breast epithelial cell line, MCF-7), and explains the underlying mechanisms. SP-D and a recombinant fragment of human SP-D (rhSP-D) induced G2/M phase cell cycle arrest, and dose and time-dependent apoptosis in the AML14.3D10 eosinophilic leukemia cell line. Levels of various apoptotic markers viz. activated p53, cleaved caspase-9 and PARP, along with G2/M checkpoints (p21 and Tyr15 phosphorylation of cdc2) showed significant increase in these cells. We further attempted to elucidate the underlying mechanisms of rhSP-D induced apoptosis using proteomic analysis. This approach identified large scale molecular changes initiated by SP-D in a human cell for the first time. Among others, the proteomics analysis highlighted a decreased expression of survival related proteins such as HMGA1, overexpression of proteins to protect the cells from oxidative burst, while a drastic decrease in mitochondrial antioxidant defense system. rhSP-D mediated enhanced oxidative burst in AML14.3D10 cells was confirmed, while antioxidant, N-acetyl-L-cysteine, abrogated the rhSP-D induced apoptosis. The rhSP-D mediated reduced viability was specific to the cancer cell lines and viability of human PBMCs from healthy controls was not affected. The study suggests involvement of SP-D in host's immunosurveillance and therapeutic potential of rhSP-D in the eosinophilic leukemia and cancers of other origins.
Insights
Surfactant protein D (SP-D) demonstrates a novel ability to reduce cancer cell viability by inducing apoptosis and cell cycle arrest. This innate immune molecule shows therapeutic potential for eosinophilic leukemia and other cancers.
Area of Science:
- Immunology
- Molecular Biology
- Oncology
Background:
- Surfactant protein D (SP-D) is an innate immune molecule crucial for host defense and inflammation regulation.
- SP-D participates in various immune functions, including pathogen clearance and immune cell modulation.
Purpose of the Study:
- To investigate the novel anti-leukemic effects of SP-D on cancer cell lines.
- To elucidate the underlying molecular mechanisms of SP-D-induced cancer cell death.
Main Methods:
- Treatment of leukemic and cancer cell lines (AML14.3D10, THP-1, Jurkat, Raji, MCF-7) with SP-D and recombinant human SP-D (rhSP-D).
- Analysis of cell cycle progression, apoptosis markers (p53, caspase-9, PARP), and G2/M checkpoints (p21, cdc2).
- Proteomic analysis to identify molecular changes induced by rhSP-D, including assessment of oxidative stress and antioxidant systems.
Main Results:
- rhSP-D induced G2/M cell cycle arrest and apoptosis in AML14.3D10 cells.
- Increased levels of apoptotic markers and G2/M checkpoint proteins were observed.
- Proteomic analysis revealed decreased expression of survival proteins (e.g., HMGA1) and impaired mitochondrial antioxidant defense, leading to enhanced oxidative burst.
- rhSP-D reduced cancer cell viability without affecting healthy human peripheral blood mononuclear cells (PBMCs).
Conclusions:
- SP-D possesses a novel capability to reduce cancer cell viability by inducing apoptosis and cell cycle arrest.
- The mechanism involves enhanced oxidative burst and disruption of cellular survival pathways.
- rhSP-D exhibits potential as a therapeutic agent for eosinophilic leukemia and other cancers.
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