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Updated: Feb 12, 2026

Depletion and Reconstitution of Macrophages in Mice
Published on: August 1, 2012
Rlip depletion prevents spontaneous neoplasia in TP53 null mice
Sanjay Awasthi1,2, Joshua Tompkins2, Jyotsana Singhal2
1Division of Hematology & Oncology, Department of Internal Medicine, Texas Tech Health Sciences Center, Lubbock, TX 79430-9410; sanjay.awasthi@ttuhsc.edu ariggs@coh.org.
Abstract:
TP53 (p53) is a tumor suppressor whose functions are lost or altered in most malignancies. p53 homozygous knockout (p53-/-) mice uniformly die of spontaneous malignancy, typically T-cell lymphoma. RALBP1 (RLIP76, Rlip) is a stress-protective, mercapturic acid pathway transporter protein that also functions as a Ral effector involved in clathrin-dependent endocytosis. In stark contrast to p53-/- mice, Rlip-/- mice are highly resistant to carcinogenesis. We report here that partial Rlip deficiency induced by weekly administration of an Rlip-specific phosphorothioate antisense oligonucleotide, R508, strongly inhibited spontaneous as well as benzo(a)pyrene-induced carcinogenesis in p53-/- mice. This treatment effectively prevented large-scale methylomic and transcriptomic abnormalities suggestive of inflammation found in cancer-bearing p53-/- mice. The remarkable efficiency with which Rlip deficiency suppresses spontaneous malignancy in p53-/- mice has not been observed with any previously reported pharmacologic or genetic intervention. These findings are supported by cross-breeding experiments demonstrating that hemizygous Rlip deficiency also reduces the spontaneous malignancy phenotype of p53+/- mice. Rlip is found on the cell surface, and antibodies directed against Rlip were found to inhibit growth and promote apoptosis of cell lines as effectively as Rlip siRNA. The work presented here investigates several features, including oxidative DNA damage of the Rlip-p53 association in malignant transformation, and offers a paradigm for the mechanisms of tumor suppression by p53 and the prospects of suppressing spontaneous malignancy in hereditary cancer syndromes such as Li-Fraumeni.
Insights
Partial deficiency of RAL binding protein 1 (RLIP) significantly suppressed spontaneous malignancy in p53 knockout mice. This targeted approach prevented cancer development and associated molecular changes, offering a novel therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- TP53 (p53) is a critical tumor suppressor frequently inactivated in cancers.
- p53 knockout mice develop spontaneous malignancies, primarily T-cell lymphoma.
- RALBP1 (RLIP76, Rlip) is involved in stress response and endocytosis, and its deficiency confers resistance to carcinogenesis.
Purpose of the Study:
- To investigate the therapeutic potential of RLIP deficiency in suppressing spontaneous malignancy in p53-deficient mice.
- To explore the impact of RLIP inhibition on methylomic and transcriptomic alterations in cancer development.
- To examine the role of RLIP in the p53-mediated tumor suppression pathway.
Main Methods:
- Weekly administration of a RLIP-specific antisense oligonucleotide (R508) to p53 knockout mice.
- Induction of carcinogenesis using benzo(a)pyrene in p53 knockout mice.
- Analysis of methylomic and transcriptomic profiles, and cross-breeding experiments.
Main Results:
- Partial RLIP deficiency strongly inhibited spontaneous and benzo(a)pyrene-induced carcinogenesis in p53 knockout mice.
- R508 treatment prevented widespread methylomic and transcriptomic abnormalities associated with inflammation in tumors.
- Hemizygous RLIP deficiency also reduced spontaneous malignancy in p53 heterozygous mice.
- Anti-RLIP antibodies inhibited cancer cell growth and promoted apoptosis.
Conclusions:
- RLIP deficiency is a highly effective strategy for suppressing spontaneous malignancy in p53-deficient models.
- Targeting RLIP offers a novel paradigm for tumor suppression, potentially applicable to hereditary cancer syndromes like Li-Fraumeni.
- The findings elucidate mechanisms of p53 tumor suppression and highlight RLIP as a therapeutic target.
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