Raman and SERS Spectra of Human Myelin Basic Protein in Cerebrospinal Fluid
Abstract
1. Introduction
2. Materials and Methods
2.1. Preparation of Solutions
2.2. Characterization by Raman/SERS
2.3. Spectral Analysis
2.4. Evaluation of Spectral Similarity (Correlation) Between Each Sample and Pure MBP
3. Results
3.1. Spectral Ratio Analysis: Comparison of MBP vs. CSF
3.2. Spectral Similarity
4. Discussion
4.1. Structural Details of the Raman Spectrum of Recombinant Murine MBP and Comparison with Human MBP Results from the Present Study
4.2. SERS Intensity Ratio Analysis
4.3. Applications in Demyelinating Neurological Diseases
4.4. Limitations
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Raman Shift (cm−1) | Proposed Band Assignment |
|---|---|
| 516 | rocking of CO2− (536) (isoleucine) |
| 639 | v(C-S) gauche (methionine) (630–670) C-C twisting of tyrosine and phenylalanine (643–649) |
| 789 | Ring breathing tryptophan (proteins) (760) C-C stretching (813) |
| 848 | Single-bond stretching vibrations for valine (850) Tyrosine (Fermi resonance of ring fundamental and overtone) Ring breathing mode of tyrosine & C-C stretch of proline ring (853) |
| 875 | C-C stretching, hydroxyproline (876) Tryptophan, d(ring) (880) |
| 928 | Skeletal C-C, α -helix (932) C-C stretching mode Proline, hydroxyproline, valine (928–950) |
| 966 | C-C backbone (971–973) C-C stretching β-sheet (proteins) (980) |
| 1073 | Proline (1066–1067) |
| 1132 | C-N stretching (1128) |
| 1170 | C-H in-plane bending mode of tyrosine (1170) |
| 1218 | Amide III C-N stretching, C=N=C stretching, and N-H bending (1200–1350), (β-sheet structure) (1220) Hydroxyproline, tyrosine (1206) v(C-C6H5), tryptophan, phenylalanine (1208) |
| 1282 | Amide III (α-helix) (1279) CH2 wagging vibrations from glycine backbone & proline side chains (1280) |
| 1331 | CH3CH2 twisting, wagging, and bending modes (1335–1339) Amide III & CH2 wagging vibrations from glycine backbone & proline side chain (1337) Tryptophan (1337–1339) |
| 1368 | Tryptophan (1365) |
| 1475 | Fermi interaction d(CH2), & g(CH2) (1463) C=N stretching (1470) |
| 1572 | Amide II (CN stretching & in-plane bending of the N-H group (1480–1575) C-C stretching (1580) d(C=C), phenylalanine (1582–1583) |
| 1609 | Amide I, C=O stretching vibrations of the peptide backbone (1600–1800) C=C in-plane bending mode of phenylalanine & tyrosine (1603–1607) |
| 1706 | v(C=O)OH (amino acids aspartic & glutamic acid) (1700–1750) |
| 1813 | Silent region Stretching carbonil group C=O (carbonil region 1600–1900) |
| Raman Shift (cm−1) | Proposed Band Assignment |
|---|---|
| 711 | v(C-S) trans (amino acid methionine) (700–745) Cholesterol, cholesterol ester (702) C-N membrane phospholipids head (717–719), sphingomyelin (719) Symmetrical stretch vibration of the choline group N+(CH3)3 (719) C-C-N+ symmetric stretching in phosphatidylcholine (719) |
| 756 | Symmetric breathing of tryptophan (752–759) |
| 811 | O-P-O stretching RNA (811) C-C stretching proline (815) |
| 839 | Asymmetric O-P-O stretching (831) Deformative vibrations of amine groups (838) Polysaccharide structure (840–860) |
| 864 | Tyrosine, collagen (859) Phosphate group, phosphatidic acid (860) Ribose vibration, one of the distinct RNA modes (867, with 915 and 974) Carbohydrates (C-O-C) skeletal mode (868) Single bond stretching in proline, valine (869) C-C stretching (868–870) |
| 906 | Carbohydrates (C-O-C) skeletal mode (898–913) Proline (918) |
| 939 | C-C stretch backbone (938) Skeletal modes (polysaccharides) (941) |
| 956 | Single bond stretching in proline, valine, and polysaccharides (950) vs(CH3) of proteins (a-helix) (951) Lipids (968) |
| 984 | C-C stretching b-sheet (proteins) (980) =CH bending (lipids) (980) |
| 1009 | Bound & free NADH (1000) Symmetric ring breathing mode of phenylalanine (1000–1034) |
| 1081 | Symmetric PO2− stretching of DNA (1070–1090) Phosphodiester vibrations in nucleic acids (1080–84) C-C or C-O stretching mode of phospholipids (1078–80) v1CO32−, v3PO43−, v(C-C) skeletal of acyl backbone in lipid (gauche conformation) (1081–1087) Carbohydrates (1082) C-N stretching mode of proteins (1083) |
| 1120 | Glucose (1117) C-O band of ribose (marker band of RNA in solutions) (1120) C-C stretching mode of lipids and protein, C-N stretch (1117–1130) |
| 1164 | C-C/C-N stretching (proteins) (1155–1158) C-H in-plane bending mode of tyrosine (1163–1172) |
| 1189 | Cytosine, guanine, adenine (1180–1184) Anti-symmetric phosphate vibrations (1185–1300) |
| 1239 | Amide III (1200–1300) (due to coupling of C-N stretching & N-H bonding); ß-sheet and random coils) (1242) CH2 wagging vibrations from glycine backbone & proline side chains (1237–1239) Asymmetric phosphate [PO2− (asym.)] stretching modes (1243) |
| 1256 | C-N in-plane stretching (1254) Lipids (1255) A, T (ring breathing modes of the DNA/RNA bases); amide III (protein) 1257–59 |
| 1312 | C-N asymmetric stretching in asymmetric aromatic amines (1308) CH3/CH2 twisting, wagging &/or bending mode of proteins & lipids (1300–14) G (ring breathing modes of the DNA/RNA bases)-C-H deformation (protein) (1318) Amide III (a-helix) (1318–21) |
| 1334 | Amide III & CH3CH2 wagging vibrations from glycine backbone & proline side chain (1335–45) A, G (ring breathing modes in the DNA bases)- C-H deformation (protein) (1337) Tryptophan (1337–9) |
| 1367 | Tryptophan (1359–69) vs(CH3) (phospholipids) (1367) |
| 1423 | v(C=O)O− (amino acids aspartic & glutamic acid) (1400–30) CH2 bending and scissoring modes of proteins & lipids, CH deformation (DNA/RNA & proteins & lipids & carbohydrates) (1420–80) NH in-plane deformation (1423) |
| 1445 | CH2 deformation (1437–53), scissoring (1439) in proteins and lipids |
| 1484 | Amide II (due to a coupling of CN stretching & in-plane bending of the N-H group) (1480–575) G, A (ring breathing modes in the purine DNA bases) (1485) |
| 1515 | Cytosine (1515) In-plane vibrations of the conjugated -C=C- (1525) |
| 1548 | v(C=C), tryptophan (1548–1560) v(CN) and d(NH) amide II (protein assignment) (1558) Tyrosine, COO− (1558) |
| 1573 | G, A (ring breathing modes of the DNA/RNA bases) (1573–75) d(C=C), C=C bending mode of phenylalanine (1582–83) |
| 1626 | Amide I band of proteins, due to C=O stretching (1600–800) Tryptophan and/or ß-sheet (1622) C¤=C¤ stretch (1628) Amide C=O stretching absorption for the ß -form polypeptide films (1628) |
| 1673 | C=C stretch (1670–4) Amide I band (C=O stretch coupled to a N-H bending) (1673) Amide I (ß -sheet) (1676) |
| Raman Shift (cm−1) | Proposed Band Assignment |
|---|---|
| 708 | v(C-S) trans (aminoacid methionine) (700–745) Cholesterol, cholesterol ester (702) CN2 (CH3)3 (lipids) (717–719) Choline group (717–719) C-N (membrane phospholipid head)/nucleotide Peak (718) Symmetrical stretch vibration of the choline group N+(CH3)3, characteristic of phospholipids (719) Phosphatidylcholine, sphingomyelin (719) C-C-N+ symmetric stretching in phosphatidylcholine (lipid assignment) (719) |
| 858 | Tyrosine (Fermi resonance of ring fundamental and overtone) (850) C-C stretch of proline ring, hydroxyproline, tyrosine ring breathing mode (852–856) Glycogen (853) Amino acid side chain vibrations of proline & hydroxyproline, as well as a (C-C) vibration of the protein backbone (856) Tyrosine (859) Phosphate group (860) Phosphatidic acid (860) Ribose vibration, one of the distinct RNA modes (867, with 915 and 974) C-C stretching (868) Monosaccharides (b-fructose), (C-O-C) skeletal mode (868) Disaccharide (sucrose), (C-O-C) skeletal mode (868) Polysaccharides, amylose (868) Polysaccharides, amylopectin (868) Proline (869) Most probably due to single-bond stretching vibrations for the amino acids proline and valine and polysaccharides (870) C-C stretching in proteins (870) |
| 897 | Hydroxyproline, tryptophan (879) Tryptophan, d(ring) (880) Saccharide band (overlaps with acyl band) (891) Backbone, C-C skeletal (893) Phosphodiester, Deoxyribose (893–896) Monosaccharides (β-glucose), (C-O-C) skeletal mode (898) Disaccharide (maltose), (C-O-C) skeletal mode (898) |
| 959 | Most probably due to single-bond stretching vibrations for the amino acids proline and valine, and polysaccharides (950) vs(CH3) of proteins (a-helix) (951) Lipids (968) |
| 984 | C-C stretching b-sheet (proteins) (980) =CH bending (lipids) (980) |
| 1020 | v(CO), v(CC), d(OCH), ring (polysaccharides) Symmetric ring breathing mode of phenylalanine (1000–1034) Glycogen (1022–1025) |
| 1084 | Symmetric PO2− stretching of DNA (represents more DNA in the cell) (1070–1090) v(C-C) or v(C-O), phospholipids (lipid assignment) (1078) Pronounced symmetric phosphate stretch (1078) Phospholipids (1078) C-C or C-O stretching mode of phospholipids (1078) Carbohydrate peak for solids (1078) C-C or C-O stretch (lipid), C-C or PO2 stretch (nucleic acid) (1078) Typical phospholipids (1080) Phosphate vibrations (phosphodiester groups in nucleic acids) (1080) v1CO32−, v3PO43− v(C-C) skeletal of acyl backbone in lipid (gauche conformation) (1081) Carbohydrate residues of collagen (1082) Carbohydrates peak for solutions (1082) Nucleic acids (1082) C-N stretching mode of proteins (and lipid mode of lesser degree) (1083) Phosphodiester groups in nucleic acids (1084) v(C-C) gauche (1086) v1CO32−,v3PO43−,v(C-C) skeletal of acyl backbone in lipid (gauche conformation) (1087) |
| 1125 | Glucose (1117) C-C stretch (lipids) (1117–1119) C-O band of ribose (serves as a marker band for RNA in solutions) (1120) C-C stretching mode of lipids and protein, C-N stretch (1123–1130) |
| 1162 | C-C/C-N stretching (proteins) (1155–1158) Tyrosine (1163–1172) C-H in-plane bending mode of tyrosine (1170) |
| 1250 | Guanine, cytosine (NH2) (1250–1252) C-O4 aromatic stretch (1252) C-N in-plane stretching (1254) Lipids (1255) A, T (ring breathing modes of the DNA/RNA bases)-amide III (protein) (1257) Amide III, adenine, cytosine (1258) Guanine, cytosine (NH2) (1259) Amide II (1259) |
| 1317 | CH3/CH2 twisting, wagging &/or bending mode of proteins & lipids (1300–1314) G (ring breathing modes of the DNA/RNA bases)-C-H deformation (protein) (1318) Amide III (a-helix) (1318–1321) |
| 1367 | Tryptophan (1359–1369) vs(CH3) (phospholipids) (1367) |
| 1428 | v(C=O)O− (amino acids aspartic & glutamic acid) (1400–1430) CH2 bending and scissoring modes of proteins & lipids, CH deformation (DNA/RNA & proteins & lipids & carbohydrates) (1420–1480) NH in-plane deformation (1423) |
| 1495 | Amide II (largely due to a coupling of CN stretching & in-plane bending of the N-H group, is not often used for structural studies per se because it is less sensitive and is subject to interference from absorption bounds of amino acid side chain vibrations) (1480–1575) DNA (1490) C-N stretching vibration coupled with the in-plane C-H bending in amino radical cations (1491) |
| 1517 | Cytosine (1506–1515) v(C-C), v(C=C) (1514–1538) |
| 1542 | Amide carbonyl group vibrations and aromatic hydrogens (1540–1680) Amide II (1544) C6-H deformation mode (1545) Bound & free NADH (1546) v(C=C), tryptophan (protein assignment) (1548–1560) v(CN) and d(NH) amide II (protein assignment) (1558) Tyrosine, amide II, COO− (1558) |
| 1567 | Tryptophan (1560) Guanine, adenine, TRP (protein) (1573) Ring breathing modes in the DNA bases (1575) G, A (ring breathing modes of the DNA/RNA bases) (1575) C-C stretching (1580) d(C=C), C=C bending mode of phenylalanine (1582–1583) |
| 1631 | Tryptophan &/or b-sheet (1618–22) C¤=C¤ stretch (1628) Amide C=O stretching absorption for the ß -form polypeptide films (1628) Amide I band (both a-helix and b-structure) (1634–1645) Random coils (1647) |
| MBP | CSF | MBP + CSF | Proposed Band Assignment |
|---|---|---|---|
| 848 | 839 | 858 | Tyrosine (Fermi resonance of ring fundamental and overtone) (850–859) C-C stretch of proline ring, hydroxyproline, tyrosine ring breathing mode (852–856) (C-C) vibration of the protein backbone (856) |
| 966 | 956 | 959 | Single-bond stretching vibrations for the amino acids proline and valine (950) vs(CH3) of proteins (a-helix) (951) |
| 1073 | 1081 | 1084 | C-N stretching mode of proteins (1083) |
| 1132 | 1120 | 1125 | C-C stretching mode of proteins, C-N stretch (1123–1130) |
| 1170 | 1164 | 1162 | C-C/C-N stretching (proteins) (1155–1158) Tyrosine (1163–1172) C-H in-plane bending mode of tyrosine (1170) |
| 1368 | 1367 | 1367 | Tryptophan (1359–1369) |
| 1475 | 1484 | 1495 | Amide II (mainly due to a coupling of CN stretching & in-plane bending of the N-H group (1480–575) C-N stretching vibration coupled with the in-plane C-H bending in amino radical cations (1491) |
| 1572 | 1573 | 1567 | Tryptophan (1560) C-C stretching (1580) d(C=C), C=C bending mode of phenylalanine (1582–1583) |
| 1609 | 1626 | 1631 | Tryptophan &/or b-sheet (1618–1622) C¤=C¤ stretch (1628) Amide C=O stretching absorption for the ß -form polypeptide films (1628) Amide I band (both a-helix and b-structure) (1634–1645) Random coils (1647) |
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Bravo-Oro, A.; Ugarte-Anchondo, S.; Martínez-Ruiz, E.O.; Rodríguez-Aranda, M.d.C.; Reyes-Reyes, A.; García-Mendoza, C.I.; Ortiz-Dosal, L.C.; Rivera-Pérez, E.; Reyes-Reyes, J.A.; Kolosovas-Machuca, E.S.; et al. Raman and SERS Spectra of Human Myelin Basic Protein in Cerebrospinal Fluid. Nanomaterials 2026, 16, 594. https://doi.org/10.3390/nano16100594
Bravo-Oro A, Ugarte-Anchondo S, Martínez-Ruiz EO, Rodríguez-Aranda MdC, Reyes-Reyes A, García-Mendoza CI, Ortiz-Dosal LC, Rivera-Pérez E, Reyes-Reyes JA, Kolosovas-Machuca ES, et al. Raman and SERS Spectra of Human Myelin Basic Protein in Cerebrospinal Fluid. Nanomaterials. 2026; 16(10):594. https://doi.org/10.3390/nano16100594
Chicago/Turabian StyleBravo-Oro, Antonio, Sergio Ugarte-Anchondo, Erick Osvaldo Martínez-Ruiz, Ma. del Carmen Rodríguez-Aranda, Adán Reyes-Reyes, Cristian Israel García-Mendoza, Luis Carlos Ortiz-Dosal, Emmanuel Rivera-Pérez, Juan Andrés Reyes-Reyes, Eleazar Samuel Kolosovas-Machuca, and et al. 2026. "Raman and SERS Spectra of Human Myelin Basic Protein in Cerebrospinal Fluid" Nanomaterials 16, no. 10: 594. https://doi.org/10.3390/nano16100594
APA StyleBravo-Oro, A., Ugarte-Anchondo, S., Martínez-Ruiz, E. O., Rodríguez-Aranda, M. d. C., Reyes-Reyes, A., García-Mendoza, C. I., Ortiz-Dosal, L. C., Rivera-Pérez, E., Reyes-Reyes, J. A., Kolosovas-Machuca, E. S., & Ortiz-Dosal, A. (2026). Raman and SERS Spectra of Human Myelin Basic Protein in Cerebrospinal Fluid. Nanomaterials, 16(10), 594. https://doi.org/10.3390/nano16100594

