Sugar-based amphiphilic nanoparticles arrest atherosclerosis in vivo
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
Authors: Lewis, Daniel R.; Petersen, Latrisha K.; York, Adam W.; Zablocki, Kyle R.; Joseph, Laurie B.; Kholodovych, Vladyslav; Prud'homme, Robert K.; Uhrich, Kathryn E.; Moghe, Prabhas V.
Abstract
Atherosclerosis, the build-up of occlusive, lipid-rich plaques in arterial walls, is a focal trigger of chronic coronary, intracranial, and peripheral arterial diseases, which together account for the leading causes of death worldwide. Although the directed treatment of atherosclerotic plaques remains elusive, macrophages are a natural target for new interventions because they are recruited to lipid-rich lesions, actively internalize modified lipids, and convert to foam cells with diseased phenotypes. In this work, we present a nanomedicine platform to counteract plaque development based on two building blocks: first, at the single macrophage level, sugar-based amphiphilic macromolecules (AMs) were designed to competitively block oxidized lipid uptake via scavenger receptors on macrophages; second, for sustained lesion-level intervention, AMs were fabricated into serum-stable core/shell nanoparticles (NPs) to rapidly associate with plaques and inhibit disease progression in vivo. An AM library was designed and fabricated into NP compositions that showed high binding and down-regulation of both MSR1 and CD36 scavenger receptors, yielding minimal accumulation of oxidized lipids. When intravenously administered to amousemodel of cardiovascular disease, these AM NPs showed a pronounced increase in lesion association compared with the control nanoparticles, causing a significant reduction in neointimal hyperplasia, lipid burden, cholesterol clefts, and overall plaque occlusion. Thus, synthetic macromolecules configured as NPs are not only effectively mobilized to lipid-rich lesions but can also be deployed to counteract atheroinflammatory vascular diseases, highlighting the promise of nanomedicines for hyperlipidemic and metabolic syndromes.
Mutation screening and association study of the candidate prostate cancer susceptibility genes MSR1, PTEN, and KLF6
PROSTATE
Authors: Bar-Shira, Anat; Matarasso, Noa; Rosner, Serena; Bercovich, Dani; Matzkin, Haim; Orr-Urtreger, Avi
Abstract
BACKGROUND. MSR1, PTEN, and KLF6 have been implicated as candidate susceptibility genes for prostate tumorigenesis. METHODS. Three hundred Jewish prostate cancer patients were screened for alterations in these genes. RESULTS. MSR1 was conserved in all patients. PTEN screening revealed a novel missense mutation and a silent change. Five KLF6 alterations were detected in 17 patients, including Q160X, the only nonsense KLF6 germline mutation described to date in a cancer patient. The KLF6 IVSI-27G > A polymorphism, recently associated with prostate cancer risk, was detected in 11.9% of the patients and 17.3% of the controls (P = 0.043). IVS1-27A allele frequency was significantly lower in prostate cancer patients (P = 0.030), specifically in Ashkenazi patients (P = 0.047) compared to controls. CONCLUSIONS. We found no evidence that MSR1 and PTEN germline mutations are associated with prostate cancer risk in Jews. The negative association between KLF6 IVSI-27A and prostate cancer risk supports a population-specific effect of susceptibility alleles in prostate tumorigenesis.