Keyword search (4,163 papers available)

"Identification" Keyword-tagged Publications:

Title Authors PubMed ID
1 Energy Measures as Biomarkers of SARS-CoV-2 Variants and Receptors Ghannoum Al Chawaf K; Lahmiri S; 41596038
JMSB
2 Intraspecific complexity in mercury contamination of two harvested fishes revealed by genetics: Food security and conservation implications Gibelli J; Michaelides S; Won H; Chamlian B; Bampfylde C; Maclean B; Giroux P; Gray QZ; Voyageur M; Jeon HB; Bouchard R; Fraser DJ; 41380599
BIOLOGY
3 A type-3 fuzzy synchronization system subjected to hysteresis quantizer inputs and unknown dynamics: Applicable to financial and physical chaotic systems Tian M; Mohammadzadeh A; Taghavifar H; Sakthivel R; Zhang C; 41381323
ENCS
4 The predictive role of olfactory identification on episodic memory and mild cognitive impairment: Results from the CIMA-Q cohort Jobin B; Phillips NA; Frasnelli J; Boller B; 40944318
PSYCHOLOGY
5 Genomics-Enabled Mixed-Stock Analysis Uncovers Intraspecific Migratory Complexity and Detects Unsampled Populations in a Harvested Fish Gibelli J; Won H; Michaelides S; Jeon HB; Fraser DJ; 39995301
BIOLOGY
6 Metabolomics 2023 workshop report: moving toward consensus on best QA/QC practices in LC-MS-based untargeted metabolomics Mosley JD; Dunn WB; Kuligowski J; Lewis MR; Monge ME; Ulmer Holland C; Vuckovic D; Zanetti KA; Schock TB; 38980450
CHEMBIOCHEM
7 Computational neuroscience across the lifespan: Promises and pitfalls van den Bos W; Bruckner R; Nassar MR; Mata R; Eppinger B; 29066078
PSYCHOLOGY
8 Basic psychological need satisfaction of collegiate athletes: the unique and interactive effects of team identification and LMX quality Leduc JG; Boucher F; Marques DL; Brunelle E; 38756189
JMSB
9 A DiffeRential Evolution Adaptive Metropolis (DREAM)-based inverse model for continuous release source identification in river pollution incidents: Quantitative evaluation and sensitivity analysis Zhu Y; Cao H; Gao Z; Chen Z; 38309421
ENCS
10 Deep learning for tooth identification and enumeration in panoramic radiographs Sadr S; Mohammad-Rahimi H; Ghorbanimehr MS; Rokhshad R; Abbasi Z; Soltani P; Moaddabi A; Shahab S; Rohban MH; 38169618
ENCS
11 Sub-hourly measurement datasets from 6 real buildings: Energy use and indoor climate Sartori I; Walnum HT; Skeie KS; Georges L; Knudsen MD; Bacher P; Candanedo J; Sigounis AM; Prakash AK; Pritoni M; Granderson J; Yang S; Wan MP; 37153123
ENCS
12 Development of a DREAM-based inverse model for multi-point source identification in river pollution incidents: Model testing and uncertainty analysis Zhu Y; Chen Z; 36191500
ENCS
13 Multiple Identifications of Employees in an Organization: Salience and Relationships of Foci and Dimensions Sidorenkov AV; Borokhovski EF; Stroh WA; Naumtseva EA; 35735392
CSLP
14 Identification of point source emission in river pollution incidents based on Bayesian inference and genetic algorithm: Inverse modeling, sensitivity, and uncertainty analysis Zhu Y; Chen Z; Asif Z; 34380214
ENCS
15 Relationships between Employees&#39, Identifications and Citizenship Behavior in Work Groups: The Role of the Regularity and Intensity of Interactions Sidorenkov AV; Borokhovski EF; 34206317
CSLP
16 Evaluation of System Modelling Techniques for Waste Identification in Lean Healthcare Applications. Alkaabi M, Simsekler MCE, Jayaraman R, Al Kaf A, Ghalib H, Quraini D, Ellahham S, Tuzcu EM, Demirli K 33447104
ENCS

 

Title:Energy Measures as Biomarkers of SARS-CoV-2 Variants and Receptors
Authors:Ghannoum Al Chawaf KLahmiri S
Link:https://pubmed.ncbi.nlm.nih.gov/41596038/
DOI:10.3390/bioengineering13010107
Publication:Bioengineering (Basel, Switzerland)
Keywords:Bartlett's testCOVID-19SARS-CoV-2genetic sequenceshuman receptorsmultiple ANOVA teststatistical analysisvariant identification
PMID:41596038 Category: Date Added:2026-01-28
Dept Affiliation: JMSB
1 Department of Supply Chain and Business Technology Management, John Molson School of Business, Concordia University, Montreal, QC H3H 0A1, Canada.

Description:

The COVID-19 outbreak has made it evident that the nature and behavior of SARS-CoV-2 requires constant research and surveillance, owing to the high mutation rates that lead to variants. This work focuses on the statistical analysis of energy measures as biomarkers of SARS-CoV-2. The main purpose of this study is to determine which energy measure can differentiate between SARS-CoV-2 variants, human cell receptors (GRP78 and ACE2), and their combinations. The dataset includes energy measures for different biological structures categorized by variants, receptors, and combinations, representing the sequence of variants and receptors. A multiple analysis of variance (ANOVA) test for equality of means and a Bartlett test for equality of variances are applied to energy measures. Results from multiple ANOVA show (a) the presence of significant differences in energy across variants, receptors, and combinations, (b) that average energy is significant only for receptors and combinations, but not for variants, and (c) the absence of significant differences observed for standard deviation across variants or combinations, but that there are significant differences across receptors. The results from the Bartlett tests show that (a) there is a presence of significant differences in the variances in energy across the variants and combinations, but no significant differences across receptors, (b) there is an absence of significant differences in variances across any group (variants, receptors, combinations), and (c) there is an absence of significant differences in variances for standard deviation of energy across variants, receptors, or combinations. In summary, it is concluded that energy and mean energy are the key biomarkers used to differentiate receptors and combinations. In addition, energy is the primary biomarker where variances differ across variants and combinations. These findings can help to implement tailored interventions, address the SARS-CoV-2 issue, and contribute considerably to the global fight against the pandemic.





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