Raman Analysis of RNA Nucleotide Strands From SARS‐CoV‐2 Variants and Subvariants: A Step Forward in the Definition of “Raman Genome”

ABSTRACT Raman spectra of RNA nucleotide strands extracted from 20 SARS‐CoV‐2 strains, including the original Japanese isolate, Alpha, Beta, Gamma, Delta, Lambda, Theta, Mu, and 12 Omicron subvariants, were systematically collected, deconvoluted, and converted into Raman barcodes. The spectra exhibited common features associated with the RNA backbone, ribofuranose rings, and nitrogenous bases, reflecting the overall structural similarity of the viral RNAs. However, distinct differences were observed in spectral signatures related to β‐D‐ribofuranose vibrations, phosphate linkages, and RNA bases sensitive to secondary‐structure variations. Conventional principal component analysis provided only limited discrimination among variants and subvariants. In contrast, Raman barcodes captured subtle molecular‐scale structural differences and successfully distinguished all investigated strains according to their RNA secondary structures. The analysis identified vibrational markers associated with nucleotide chain length, backbone conformation, and ribofuranose dynamics. Several backbone‐ and base‐related signals exhibited hyperchromic behavior correlated with RNA secondary‐structure features, including hairpin content and stem length. These relationships may serve as indicators for the rapid detection of emerging variants. By encoding key spectral signatures, Raman barcodes provide a robust framework for accurate classification of SARS‐CoV‐2 strains based on the molecular architecture of their RNAs.

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Journal
Advanced Science
Published
2026-09-30
DOI
https://doi.org/10.1002/advs.77679
Primary Topic
RNA and protein synthesis mechanisms
Type
article
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article

Raman Analysis of RNA Nucleotide Strands From SARS‐CoV‐2 Variants and Subvariants: A Step Forward in the Definition of “Raman Genome”

Yoshiki Yasukochi, Osam Mazda, Wenliang Zhu, Giuseppe Pezzotti et al.
Advanced Science
RNA and protein synthesis mechanisms
article

Raman Analysis of RNA Nucleotide Strands From SARS‐CoV‐2 Variants and Subvariants: A Step Forward in the Definition of “Raman Genome”

Yoshiki Yasukochi, Osam Mazda, Wenliang Zhu, Giuseppe Pezzotti, Takaharu Ueno, Alfio Grillo, Koichiro Higasa, Tetsuya Adachi, Saki Ikegami, Kazu Okuma, rintaro okawa, Gianluca Angiola
article en

Abstract

ABSTRACT Raman spectra of RNA nucleotide strands extracted from 20 SARS‐CoV‐2 strains, including the original Japanese isolate, Alpha, Beta, Gamma, Delta, Lambda, Theta, Mu, and 12 Omicron subvariants, were systematically collected, deconvoluted, and converted into Raman barcodes. The spectra exhibited common features associated with the RNA backbone, ribofuranose rings, and nitrogenous bases, reflecting the overall structural similarity of the viral RNAs. However, distinct differences were observed in spectral signatures related to β‐D‐ribofuranose vibrations, phosphate linkages, and RNA bases sensitive to secondary‐structure variations. Conventional principal component analysis provided only limited discrimination among variants and subvariants. In contrast, Raman barcodes captured subtle molecular‐scale structural differences and successfully distinguished all investigated strains according to their RNA secondary structures. The analysis identified vibrational markers associated with nucleotide chain length, backbone conformation, and ribofuranose dynamics. Several backbone‐ and base‐related signals exhibited hyperchromic behavior correlated with RNA secondary‐structure features, including hairpin content and stem length. These relationships may serve as indicators for the rapid detection of emerging variants. By encoding key spectral signatures, Raman barcodes provide a robust framework for accurate classification of SARS‐CoV‐2 strains based on the molecular architecture of their RNAs.

Advanced Science
Kansai Medical University (JP), Ca' Foscari University of Venice (IT), Tokyo Medical University (JP), Politecnico di Torino (IT), Kyoto Institute of Technology (JP), Kyoto Prefectural University of Medicine (JP)
Reduced inequalities, Peace, Justice and strong institutions
Openalex Percentile: Top 19%
RNA and protein synthesis mechanisms
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