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Updated: Jan 31, 2026

Isolation of High-density Lipoproteins for Non-coding Small RNA Quantification
Published on: November 28, 2016
Distinct Proteomic Signatures in 16 HDL (High-Density Lipoprotein) Subspecies
Jeremy D Furtado1, Rain Yamamoto1,2, John T Melchior3
1From the Department of Nutrition (J.D.F., R.Y., A.B.A., M.G.-G., P.M., F.M.S.), Harvard T. H. Chan School of Public Health, Boston, MA.
Insights
Researchers identified 13 new high-density lipoprotein (HDL) subspecies, each defined by unique proteins. These distinct HDL proteomes are stable over time and may offer new insights into cardiovascular disease and lipoprotein function.
Area of Science:
- Cardiovascular Biology
- Proteomics
- Lipid Metabolism
Background:
- High-density lipoprotein (HDL) in plasma is heterogeneous, comprising apo AI and numerous associated proteins.
- These associated proteins may define distinct HDL subspecies with unique functions and disease associations.
Purpose of the Study:
- To investigate the hypothesis that specific HDL-associated proteins define stable, functional subspecies.
- To identify and characterize novel apo AI HDL subspecies beyond those previously described.
Main Methods:
- Immunoaffinity isolation techniques were used to isolate apo AI-containing species from human plasma pools.
- Antibodies against 16 additional HDL proteins were employed to isolate compositional subspecies.
- Proteomic analysis and statistical methods (correlation, permutation) were used to characterize subspecies and compare them to total HDL.
Main Results:
- 13 novel apo AI HDL subspecies were identified, defined by specific proteins like apo AIV, apo CI, apo J, and others.
- These novel subspecies constituted 1-18% of total plasma apo AI and demonstrated stable concentrations over time (mean intraclass correlation 0.62).
- The proteomes of 12 of the 16 characterized subspecies significantly differed from total HDL, with correlations observed among subspecies sharing similar functions (e.g., lipid metabolism, antioxidant).
Conclusions:
- The findings support the concept of HDL "speciation," with distinct subspecies possessing unique proteomes.
- Further functional studies of these novel HDL subspecies are warranted to understand their roles in health and disease.
- This research opens new avenues for investigating the complex HDL system and its clinical implications.
Abstract:
Objective- HDL (high-density lipoprotein) in plasma is a heterogeneous group of lipoproteins typically containing apo AI as the principal protein. Most HDLs contain additional proteins from a palate of nearly 100 HDL-associated polypeptides. We hypothesized that some of these proteins define distinct and stable apo AI HDL subspecies with unique proteomes that drive function and associations with disease. Approach and Results- We produced 17 plasma pools from 80 normolipidemic human participants (32 men, 48 women; aged 21-66 years). Using immunoaffinity isolation techniques, we isolated apo AI containing species from plasma and then used antibodies to 16 additional HDL protein components to isolate compositional subspecies. We characterized previously described HDL subspecies containing apo AII, apo CIII, and apo E; and 13 novel HDL subspecies defined by presence of apo AIV, apo CI, apo CII, apo J, α-1-antitrypsin, α-2-macroglobulin, plasminogen, fibrinogen, ceruloplasmin, haptoglobin, paraoxonase-1, apo LI, or complement C3. The novel species ranged in abundance from 1% to 18% of total plasma apo AI. Their concentrations were stable over time as demonstrated by intraclass correlations in repeated sampling from the same participants over 3 to 24 months (0.33-0.86; mean 0.62). Some proteomes of the subspecies relative to total HDL were strongly correlated, often among subspecies defined by similar functions: lipid metabolism, hemostasis, antioxidant, or anti-inflammatory. Permutation analysis showed that the proteomes of 12 of the 16 subspecies differed significantly from that of total HDL. Conclusions- Taken together, correlation and permutation analyses support speciation of HDL. Functional studies of these novel subspecies and determination of their relation to diseases may provide new avenues to understand the HDL system of lipoproteins.
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