PIP2 and cholesterol interplay in inflammation and atherosclerosis

被引:0
|
作者
Gulshan, Kailash
Lacano, Amanda J.
Traughber, Cynthia A.
Khan, Mariam R.
Opoku, Emmanuel
Smith, Jonathan D.
Nunn, Tina
Sangwan, Naseer
机构
[1] BGES, Cleveland State University, Cleveland
[2] Cleveland Clinic, Cleveland
[3] Cleveland State University, Cleveland
来源
FASEB JOURNAL | 2022年 / 36卷
关键词
D O I
10.1096/fasebj.2022.36.S1.L7640
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
INTRODUCTION: Cholesterol accumulation in arterial macrophages leads to foam cell formation, Nlrp3 inflammasome activation, and IL-1b release. Phosphatidylinositol 4, 5-bisphosphate (PIP2) plays a role in the cholesterol efflux pathway and IL-1b release. The PIP2 phosphatase TMEM55b modulates cholesterol efflux but the mechanism of this effect is not clear. Miltefosine altered PIP2 localization and blunted Nlrp3 inflammasome in macrophages, but the mechanism of its anti-atherosclerotic properties is not clear. OBJECTIVES: To determine the effect of cellular PIP2 levels on ABCA1 mediated cholesterol efflux. To determine the mechanism by which Miltefosine reduces atherosclerosis in mice. METHODS AND RESULTS: The correlation between cellular PIP2 levels and ABCA1 mediated cholesterol efflux was determined. PIP2 levels were markedly increased in cholesterol-loaded cells vs. control macrophages (~ 22 % increase, N=3, mean±SD, *P=0.05). Expression of TMEM55b, a PIP2 phosphatase, in BHK cells resulted in ~ 70 % decrease in ABCA1 mediated cholesterol efflux (N=4, mean ± SD, P<0.0001). Miltefosine treated mice showed blunted in-vivo Nlrp3 inflammasome assembly and had significantly lowered IL-1b levels in peritoneal lavage (mean +SD; N=5, **p<0.001). Miltefosine-fed mice showed significantly higher reverse cholesterol transport to plasma, liver, and feces. The hyperlipidemic apoE-/- KO mice fed with Miltefosine (50 mg/kg/day) gained significantly less weight vs. controls and showed significantly decreased atherosclerotic lesions (≥50% smaller vs. controls; mean + SD, p<0.001 in females with N=10, and p<0.04 in males with N=12). Miltefosine altered gut microbiota in hyperlipidemic apoE-/- KO mice. CONCLUSION: PIP2 regulates ABCA1 mediated cellular cholesterol efflux. Miltefosine can dampen in-vivo Nlrp3 inflammasome assembly, increase reverse cholesterol transport, reduce high fat diet-induced weight gain, reduce atherosclerotic lesion area and alter gut microbiota. © FASEB.
引用
收藏
页数:2
相关论文
共 50 条
  • [21] Voltage-Sensitive PIP2 Phosphatase Shows PIP2 Requirements for KCNQ and Ca2+ Channels
    Hille, Bertil
    Falkenburger, Bjoern H.
    Dickson, Eamonn J.
    Jensen, Jill B.
    Suh, Bjung-Chang
    BIOPHYSICAL JOURNAL, 2011, 100 (03) : 25 - 25
  • [22] Cross-Talk between Cholesterol, PIP2 and Caveolin in Regulating Kir2 Channels
    Han, Huazhi
    Rosenhouse-Dantsker, Avia
    Gnanasambandam, Radhakrishnan
    Sachs, Frederick
    Levitan, Irena
    BIOPHYSICAL JOURNAL, 2016, 110 (03) : 608A - 608A
  • [23] Exploring allosteric mechanisms in cholesterol transportation and PIP2 subtype recognition by StarD4
    Xie, Hengyi
    Weinstein, Harel
    BIOPHYSICAL JOURNAL, 2024, 123 (03) : 206A - 206A
  • [24] PIP2 Is An Electrostatic Catalyst for Vesicle Fusion by Lowering the Hydration Energy: Arresting Vesicle Fusion by Masking PIP2
    Moussa, HoudaYasmine Ali
    Shin, Kyung Chul
    Ponraj, Janarthanan
    Park, Sung Hyun
    Lee, One-Sun
    Mansour, Said
    Park, Yongsoo
    ACS NANO, 2024, 18 (20) : 12737 - 12748
  • [25] PIP2 and PIP3: Complex roles at the cell surface
    Czech, MP
    CELL, 2000, 100 (06) : 603 - 606
  • [26] Vectorial Cholesterol Transport by STARD4 is Mediated by Specific PIP2 Membrane Composition
    Shore, Derek M.
    Iaea, David B.
    Rusinova, Radda
    Khelashvili, George
    Cuendet, Michel A.
    Andersen, Olaf S.
    Maxfield, Frederick R.
    Weinstein, Harel
    BIOPHYSICAL JOURNAL, 2017, 112 (03) : 87A - 87A
  • [27] The Effector Domain of MARCKS Is a Nuclear Localization Signal that Regulates Cellular PIP2 Levels and Nuclear PIP2 Localization
    Rohrbach, Timothy D.
    Shah, Nishi
    Jackson, William P.
    Feeney, Erin V.
    Scanlon, Samantha
    Gish, Robert
    Khodadadi, Ryan
    Hyde, Stephen O.
    Hicks, Patricia H.
    Anderson, Joshua C.
    Jarboe, John S.
    Willey, Christopher D.
    PLOS ONE, 2015, 10 (10):
  • [28] PIP2 as the "coin of the realm" for neurovascular coupling
    Earley, Scott
    Kleinfeld, David
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2021, 118 (21)
  • [29] Model predictions for PIP2 raft formation
    Jarin, Zack
    Venable, Richard M.
    Pastor, Richard W.
    BIOPHYSICAL JOURNAL, 2023, 122 (03) : 225A - 225A
  • [30] ROLE OF PIP2 METABOLISM AT THE NEURONAL SYNAPSE
    Di Paolo, G.
    Chang-Ileto, B.
    Frere, S. G.
    McIntire, L. B.
    Berman, D. E.
    Chan, R. B.
    Kim, T. W.
    JOURNAL OF NEUROCHEMISTRY, 2011, 118 : 8 - 8