Unbiased and targeted mass spectrometry for the HDL proteome

被引:17
作者
Singh, Sasha A. [1 ]
Aikawa, Masanori [1 ,2 ,3 ]
机构
[1] Harvard Med Sch, Ctr Interdisciplinary Cardiovasc Sci, Div Cardiovasc, Boston, MA USA
[2] Harvard Med Sch, Ctr Excellence Vasc Biol, Div Cardiovasc, Dept Med, Boston, MA USA
[3] Harvard Med Sch, Brigham & Womens Hosp, Channing Div Network Med, Boston, MA USA
基金
美国国家卫生研究院;
关键词
apolipoprotein; label-free; multiple reaction monitoring; parallel reaction monitoring; spectral counting; stable isotopes; HIGH-DENSITY-LIPOPROTEIN; APOLIPOPROTEIN-A-I; ABSOLUTE QUANTIFICATION; MULTIPLEXED MRM; LC-MS; PLASMA; PROTEINS; DISEASE; BIOMARKERS; REVEALS;
D O I
10.1097/MOL.0000000000000374
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
Purpose of review Mass spectrometry is an ever evolving technology that is equipped with a variety of tools for protein research. Some lipoprotein studies, especially those pertaining to HDL biology, have been exploiting the versatility of mass spectrometry to understand HDL function through its proteome. Despite the role of mass spectrometry in advancing research as a whole, however, the technology remains obscure to those without hands on experience, but still wishing to understand it. In this review, we walk the reader through the coevolution of common mass spectrometry workflows and HDL research, starting from the basic unbiased mass spectrometry methods used to profile the HDL proteome to the most recent targeted methods that have enabled an unprecedented view of HDL metabolism. Recent findings Unbiased global proteomics have demonstrated that the HDL proteome is organized into subgroups across the HDL size fractions providing further evidence that HDL functional heterogeneity is in part governed by its varying protein constituents. Parallel reaction monitoring, a novel targeted mass spectrometry method, was used to monitor the metabolism of HDL apolipoproteins in humans and revealed that apolipoproteins contained within the same HDL size fraction exhibit diverse metabolic properties. Summary Mass spectrometry provides a variety of tools and strategies to facilitate understanding, through its proteins, the complex biology of HDL.
引用
收藏
页码:68 / 77
页数:10
相关论文
共 50 条
[41]   Quantitative analysis of intact apolipoproteins in human HDL by top-down differential mass spectrometry [J].
Mazur, Matthew T. ;
Cardasis, Helene L. ;
Spellman, Daniel S. ;
Liaw, Andy ;
Yates, Nathan A. ;
Hendrickson, Ronald C. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2010, 107 (17) :7728-7733
[42]   Development of a highly automated and multiplexed targeted proteome pipeline and assay for 112 rat brain synaptic proteins [J].
Colangelo, Christopher M. ;
Ivosev, Gordana ;
Chung, Lisa ;
Abbott, Thomas ;
Shifman, Mark ;
Sakaue, Fumika ;
Cox, David ;
Kitchen, Robert R. ;
Burton, Lyle ;
Tate, Stephen A. ;
Gulcicek, Erol ;
Bonner, Ron ;
Rinehart, Jesse ;
Nairn, Angus C. ;
Williams, Kenneth R. .
PROTEOMICS, 2015, 15 (07) :1202-1214
[43]   A proteome analysis of pig pancreatic islets and exocrine tissue by liquid chromatography with tandem mass spectrometry [J].
Nakashima, Yoshiki ;
Miyagi-Shiohira, Chika ;
Kobayashi, Naoya ;
Saitoh, Issei ;
Watanabe, Masami ;
Noguchi, Hirofumi .
ISLETS, 2017, 9 (06) :159-176
[44]   Myeloperoxidase mediated HDL oxidation and HDL proteome changes do not contribute to dysfunctional HDL in Chinese subjects with coronary artery disease [J].
Wang, Guisong ;
Mathew, Anna Vachaparampil ;
Yu, Haiyi ;
Li, Lei ;
He, Liyun ;
Gao, Wei ;
Liu, Xiaodan ;
Guo, Yanhong ;
Byun, Jaeman ;
Zhang, Jifeng ;
Chen, Y. Eugene ;
Pennathur, Subramaniam .
PLOS ONE, 2018, 13 (03)
[45]   Monitoring storage induced changes in the platelet proteome employing label free quantitative mass spectrometry [J].
Rijkers, Maaike ;
van den Eshof, Bart L. ;
van der Meer, Pieter F. ;
van Alphen, Floris P. J. ;
de Korte, Dirk ;
Leebeek, Frank W. G. ;
Meijer, Alexander B. ;
Voorberg, Jan ;
Jansen, A. J. Gerard .
SCIENTIFIC REPORTS, 2017, 7
[46]   A strategy for absolute proteome quantification with mass spectrometry by hierarchical use of peptide-concatenated standards [J].
Kito, Keiji ;
Okada, Mitsuhiro ;
Ishibashi, Yuko ;
Okada, Satoshi ;
Ito, Takashi .
PROTEOMICS, 2016, 16 (10) :1457-1473
[47]   Salivary proteome profile of women during fertile phase of menstrual cycle as characterized by mass spectrometry [J].
Saibaba, Ganesan ;
Rajesh, Durairaj ;
Muthukumar, Subramanian ;
Sathiyanarayanan, Ganesan ;
Aarthy, Archunan Priya ;
Archunan, Govindaraju .
GYNECOLOGY AND MINIMALLY INVASIVE THERAPY-GMIT, 2021, 10 (04) :226-234
[48]   Qualification and Verification of Serological Biomarker Candidates for Lung Adenocarcinoma by Targeted Mass Spectrometry [J].
Wu, Hsin-Yi ;
Goan, Yih-Gang ;
Chang, Yini-Hua ;
Yang, Yi-Fang ;
Chang, Hsiao-Jen ;
Cheng, Pin-Nan ;
Wu, Chih-Chieh ;
Zgoda, Victor G. ;
Chen, Yu-Ju ;
Liao, Pao-Chi .
JOURNAL OF PROTEOME RESEARCH, 2015, 14 (08) :3039-3050
[49]   Advances in high-resolution accurate mass spectrometry application to targeted proteomics [J].
Lesur, Antoine ;
Domon, Bruno .
PROTEOMICS, 2015, 15 (5-6) :880-890
[50]   Dual mass spectrometry as a tool to improve annotation and quantification in targeted plasma lipidomics [J].
Gao, Liang ;
Cazenave-Gassiot, Amaury ;
Burla, Bo ;
Wenk, Markus R. ;
Torta, Federico .
METABOLOMICS, 2020, 16 (05)