| Literature DB >> 34181092 |
Alistair James Marsden1, David R J Riley1, Stefan Birkett2,3, Quentin Rodriguez-Barucg1, Barbara-Ann Guinn1, Sean Carroll2, Lee Ingle2, Thozhukat Sathyapalan4, Pedro Beltran-Alvarez5.
Abstract
Cardiovascular disease is the major cause of death worldwide. Extensive cardiovascular biomarkers are available using blood tests but very few, if any, investigations have described non-invasive tests for cardiovascular biomarkers based on readily available hair samples. Here we show, first, that human hair proteins are post-translationally modified by arginine methylation (ArgMe). Using western blot, proteomic data mining and mass spectrometry, we identify several ArgMe events in hair proteins and we show that keratin-83 is extensively modified by ArgMe in the human hair. Second, using a preliminary cohort (n = 18) of heterogenous healthy donors, we show that the levels of protein ArgMe in hair correlate with serum concentrations of a well-established cardiovascular biomarker, asymmetric dimethylarginine (ADMA). Compared to blood collection, hair sampling is cheaper, simpler, requires minimal training and carries less health and safety and ethical risks. For these reasons, developing the potential of hair protein ArgMe as clinically useful cardiovascular biomarkers through further research could be useful in future prevention and diagnosis of cardiovascular disease.Entities:
Keywords: Arginine methylation (ArgMe); Asymmetric dimethylarginine (ADMA); Biomarker; Cardiovascular disease (CVD); Hair; Post-translational modifications (PTM); Protein
Mesh:
Substances:
Year: 2021 PMID: 34181092 PMCID: PMC9117359 DOI: 10.1007/s00726-021-03024-5
Source DB: PubMed Journal: Amino Acids ISSN: 0939-4451 Impact factor: 3.789
ArgMe sites identified in both PXD007224 and PXD016169
| Gene name | Protein name | Molecular weight (kDa) | Mono-ArgMe sites | Di-ArgMe sites |
|---|---|---|---|---|
| KRT33A | Keratin, type I cuticular Ha3-I | 45.9 | 173 | Not in common |
| KRT86 | Keratin, type II cuticular Hb6 | 53.5 | 21 | Not in common |
| KRT83 | Keratin, type II cuticular Hb3 | 54.2 | 26 | Not in common |
| HDAC5 | Histone deacetylase 5 | 122.0 | Not in common | 151 |
Fig. 1A Western blot showing detection of hair protein ArgMe from 8 healthy volunteers. An antibody targeting protein ArgMe recognised a major protein band between the 55 and 70 kDa markers (indicated by the arrow). B Same participants and same membrane as in (A) blotted using an antibody targeting keratin-83, a universal hair protein of expected MW of 54.2 KDa and detected between the 55 and 70 kDa markers (arrow). See Supp. Figure 2 for a higher exposure and Supp. Figure 3 for the overlap of the ArgMe and the keratin-83 panels. C. Silver staining of a gel loaded with the same samples as in (A) and (B). Twenty µg of proteins were loaded in the control lane for comparison with hair protein loading. D. Sequence coverage of keratin-83 mass spectrometry analysis (shaded residues, 81% of all keratin-83 sequence). Arginine residues found to be modified by mono- and di-ArgMe are identified with m and d labels, respectively, and include: R60, R180, R253, R293, R370, R437, R451 and R492
Clinical measurements of participants in our clinical study, sorted by ascending serum ADMA concentration. All participants in the clinical study were female
| Participant No | Serum ADMA (µM) | Age (y) | Height (cm) | Weight (kg) | BP (mmHg) | Pulse (bpm) | BMI (kg/m2) |
|---|---|---|---|---|---|---|---|
| 1 | 0.349 | 18 | 167 | 55 | 116/77 | 90 | 19 |
| 2 | 0.396 | 42 | 163 | 65 | 133/86 | 75 | 25 |
| 3 | 0.419 | 46 | 168 | 69 | 135/84 | 71 | 25 |
| 4 | 0.432 | 19 | 158 | 65 | 123/82 | 72 | 26 |
| 5 | 0.434 | 44 | 163 | 79 | 148/74 | 68 | 29 |
| 6 | 0.434 | 23 | 160 | 73 | 116/75 | 64 | 29 |
| 7 | 0.436 | 60 | 166 | 60 | 143/55 | 63 | 23 |
| 8 | 0.437 | 32 | 170 | 57 | 110/83 | 59 | 19 |
| 9 | 0.438 | 38 | 170 | 80 | 111/79 | 71 | 28 |
| 10 | 0.438 | 28 | 178 | 90 | 128/86 | 70 | 29 |
| 11 | 0.443 | 51 | 165 | 67 | 99/76 | 68 | 24 |
| 12 | 0.446 | 52 | 162 | 61 | 121/82 | 71 | 23 |
| 13 | 0.448 | 58 | 167 | 80 | 131/86 | 75 | 29 |
| 14 | 0.461 | 55 | 156 | 70 | 147/60 | 64 | 29 |
| 15 | 0.464 | 44 | 175 | 72 | 110/63 | 70 | 23 |
| 16 | 0.465 | 55 | 168 | 69 | 121/63 | 73 | 23 |
| 17 | 0.468 | 50 | 170 | 82 | 150/74 | 71 | 29 |
| 18 | 0.484 | 19 | 165 | 65 | 125/85 | 75 | 24 |
Fig. 2A Top, western blot showing increased protein ArgMe in hair proteins coming from the closest cm to the scalp of volunteers with > 0.44 µM serum ADMA levels. Bottom, same samples ran on a parallel gel, stained as loading control. The second lane from the left appears overloaded but there was little ArgMe signal on that lane. B Same donors as in (A), but in this case the 3rd closest centimetre to the scalp was analysed. C Plot showing a moderate positive correlation between the intensity of hair protein ArgMe and serum ADMA concentration, n = 18 samples. The six samples shown in panel (A) are identified as empty circles in panel (C). Pearson coefficient: 0.5302, p = 0.024. Spearman coefficient: 0.720, p = 0.00075