Highly pathogenic avian influenza (HPAI) H5N1 continues to pose a significant threat to animal health, poultry production, and public health worldwide. Mali experienced two outbreaks of Highly Pathogenic Avian Influenza (HPAI) H5N1 in 2021 and 2022, raising concerns about viral evolution and potential public health risks in West Africa. Suspected samples (Tissue and swab) collected from sick and dead birds during these outbreaks were analyzed at the Central Veterinary Laboratory of Bamako using quantitative real-time PCR. Whole-genome sequencing was performed on thirteen H5N1-positive samples using the Illumina MiSeq platform with a paired-end sequencing approach. Phylogenetic analyses were conducted using the maximum-likelihood method implemented in IQ-TREE v1.6.6. Phylogenetic analysis of the hemagglutinin (HA) gene revealed that all detected viruses belonged to clade 2.3.4.4b and clustered closely with strains previously reported in West Africa. In-depth analysis of the whole genome phylogenetic topology revealed the emergence of an H9N2/H5N1 reassortant strain during the 2022 outbreak. Molecular characterization of all eight genomic segments identified several mutations associated with host specificity, including markers linked to adaptation in gallinaceous poultry and mutations potentially associated with increased zoonotic potential. These findings demonstrate the continued genetic evolution of H5N1 viruses circulating in Mali and emphasize the importance of sustained genomic surveillance. Strengthening hygiene practices and biosecurity measures in poultry farms, live bird markets, and slaughterhouses is essential to reduce the risks posed to both animal and public health.
| Published in | International Journal of Microbiology and Biotechnology (Volume 11, Issue 3) |
| DOI | 10.11648/j.ijmb.20261103.12 |
| Page(s) | 106-114 |
| Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
| Copyright |
Copyright © The Author(s), 2026. Published by Science Publishing Group |
HPAI, H5N1, Phylogenetics, Molecular Characterization, Mali
Marker | Effects | H5N1 viruses from Mali | Citation |
|---|---|---|---|
PB2 gene | |||
V598T | Increased virulence in mice; Increased polymerase activity in mammalian cells; Increased replication in mammalian cells | All | Hu M. et al., (2017); Suttie A. et al., (2019) |
S715N | Decreased virulence in mice | All | Sun H. et al., (2015); Suttie A. et al., (2019) |
L89V; G309D; T339K; R477G; I495V; K627E; A676T | Increased polymerase activity in mammalian cells; Increased virulence in mice | All but: Mali/221_21VIR3462-2/2021. Mali/263_21VIR3462-5/2021 | Li J. et al., (2009); Suttie A. et al., (2019) |
L89V; G309D | Increased polymerase activity in mammalian cells; Increased virulence in mice | All but: Mali/221_21VIR3462-2/2021 | Li J. et al., (2009); Suttie A. et al., (2019) |
K526R | Increased polymerase activity in mammalian cells | Only 2022 | Song W. et al., (2014); Suttie A. et al., (2019) |
K389R | Increased polymerase activity in mammalian cells; Increased replication in mammalian cells | All but: Mali/221_21VIR3462-2/2021 | Hu M. et al., (2017); Suttie A. et al., (2019) |
E627K | Increased virulence in mice; Decreased replication in avian cells; Enhanced polymerase activity; Decreases virulence in chickens; Decreased polymerase activity in avian cells; Contributes to contact transmission in guinea pigs; Contributes to airborne pathogenicity in ferrets | Only: Mali/263_21VIR3462-5/2021 | Fornek J. L. et al., (2009); Herfst S. et al., (2012); Le Q. M. et al., (2005); Hatta M. et al., (2007); Bortz E. et al., (2011); Hatta H. et al., (2001); Richard M. et al., (2017); Shinya K. et al., (2004); Manzoor R. et al., (2009); Chen H. et al., (2007); Mase M. et al., (2006); Bogs J. et al., (2011); Kim J. H. et al., (2010); Long J. S. et al., (2013); Suttie A. et al., (2019) |
PB1 gene | |||
N66S | Enhanced replication in mice; Enhanced virulence in mice; Enhanced antiviral response in mice | All | Conenello G. M. et al., (2007); Schmolke M. et al., (2011); Suttie A. et al., (2019) |
D622G | Increased polymerase activity in mice; Increased virulence in mice | All | Feng X. et al., (2016); Suttie A. et al., (2019) |
D3V | Increased polymerase activity in avian cells; Increased replication in avian cells; Increased polymerase activity in mammalian cells; Increased replication in mammalian cells | All | Elgendy E. M. et al., (2017); Suttie A. et al., (2019) |
PA gene | |||
S37A | Increased polymerase activity in mammalian cells | All | Yamayoshi S. et al., (2014); Suttie A. et al., (2019) |
Q400P | Decreased virulence in mice | Only 2022 | DesRochers B. L. et al., (2016); Suttie A. et al., (2019) |
P190S | Decreased virulence in mice | All | DesRochers B. L. et al., (2016); Suttie A. et al., (2019) |
N409S | Increased polymerase activity in mammalian cells; Increased replication in mammalian cells | Only 2021 | Yamayoshi S. et al., (2014); Suttie A. et al., (2019) |
N383D | Increased polymerase activity in mammalian cells; Increased polymerase activity in avian cells | All | Song J. et al., (2015); Song J. et al., (2011); Suttie A. et al., (2019) |
HA gene | |||
Marker H5 Numbering | |||
K64E | Increased pH of fusion; Decreased HA stability; Decreased virulence in mice | All | Sun X. et al., (2019); Suttie A. et al., (2019) |
V182N | Increased virus binding to α2-6; Decreased virus binding to α2-3 | All | Lu X. et al., (2013); Suttie A. et al., (2019) |
S154N | Increased virus binding to α2-6 | All | Wang W. et al., (2010); Suttie A. et al., (2019) |
S133A | Increased pseudovirus binding to α2-6 | All | Yang Z. Y. et al., (2007); Suttie A. et al., (2019) |
S107R; T108I | Increased virulence in chickens; Increased virulence in mice; Increased pH of fusion | All | Wessels U. et al., (2018); Suttie A. et al., (2019) |
K218Q; S223R | Increased virus binding to α2-3; Increased virus binding to α2-6 | Allk | Guo H. et al., (2017); Suttie A. et al., (2019) |
NP gene | |||
M105V | Increased virulence in chickens | All | Tada T. et al., (2011); Tada T. et al., (2011); Suttie A. et al., (2019) |
A184K | Increased replication in avian cells; Increased virulence in chickens; Enhanced interferon response | All | Wasilenko J. L. et al., (2009); Suttie A. et al., (2019) |
MP gene | |||
T215A | Increased virulence in mice | All | Fan S. et al., (2009); Suttie A. et al., (2019) |
N30D | Increased virulence in mice | All | Fan S. et al., (2009); Suttie A. et al., (2019) |
I43M | Increased virulence in chickens; Increased virulence in ducks; Increased virulence in mice | All | Nao N. et al., (2015); Suttie A. et al., (2019) |
NS gene | |||
V149A | Increased virulence in chickens; Decreased interferon response in chickens | All | Li Z. et al., (2006); Suttie A. et al., (2019) |
P42S | Increased virulence in mice; Decreased antiviral response in mice | All | Jiao P. et al., (2008); Suttie A. et al., (2019) |
L103F; I106M | Increased virulence in mice | All | Kuo R. L. et al., (2009); Spesock A. et al., (2011); Suttie A. et al., (2019) |
I106M | Increased viral replication in mammalian cells; Increased virulence in mice | All | Ayllon J. et al., (2014); Suttie A. et al., (2019) |
C138F; K55E; K66E | Enhanced replication in mammalian cells; Decreased interferon response | All | Li J. et al., (2018); Suttie A. et al., (2019) |
C138F | Increased viral replication in mammalian cells; Decreased interferon response | All | Li J. et al., (2018); Suttie A. et al., (2019) |
AI | Avian Influenza |
BWA | Burrows-Wheeler Aligner |
CT | Cycle Threshold |
CVL | Central Veterinary Laboratory |
DNA | Deoxyribonucleic Acid |
DNSV | National Directorate of Veterinary Services |
DNPIA | National Directorate of Productions and Animal Industries |
ECTAD | Emergency Center for Transboundary Animal Diseases |
FAO-UN | United Nations -Food and Agriculture Organizations |
FAO | Food and Agriculture Organization |
GATK | Genome Analysis Toolkit |
GISAID | Global Initiative on Sharing All Influenza Data |
HA | Hemagglutinin Gene |
HPAI | Highly Pathogenic Avian Influenza |
M gene | Matrix Gene |
MAFFT | Multiple Alignment Using Fast Fourier Transform |
ML | Maximum Likelihood |
ND | Newcastle Disease |
PA | Polymerase Acidic |
PCR | Polymerase Chain Reaction |
PE | Paired-end |
qRT-PCR | Quantitative Reverse Transcription Pol Ymerase Chain Reaction |
RAF | Regional Office for Africa |
RNA | Ribonucleic Acid |
RT-PCR | Reverse Transcription Polymerase Chain Reaction |
WOAH | World Organization for Animal Health |
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APA Style
Diakite, A., Diakite, M. A., Dembele, F., Samake, K., Dembele, C., et al. (2026). Molecular and Phylogenetic Analysis of the Highly Pathogenic Avian Influenza Virus H5N1 Detected in Mali During the 2021 and 2022 Outbreaks. International Journal of Microbiology and Biotechnology, 11(3), 106-114. https://doi.org/10.11648/j.ijmb.20261103.12
ACS Style
Diakite, A.; Diakite, M. A.; Dembele, F.; Samake, K.; Dembele, C., et al. Molecular and Phylogenetic Analysis of the Highly Pathogenic Avian Influenza Virus H5N1 Detected in Mali During the 2021 and 2022 Outbreaks. Int. J. Microbiol. Biotechnol. 2026, 11(3), 106-114. doi: 10.11648/j.ijmb.20261103.12
AMA Style
Diakite A, Diakite MA, Dembele F, Samake K, Dembele C, et al. Molecular and Phylogenetic Analysis of the Highly Pathogenic Avian Influenza Virus H5N1 Detected in Mali During the 2021 and 2022 Outbreaks. Int J Microbiol Biotechnol. 2026;11(3):106-114. doi: 10.11648/j.ijmb.20261103.12
@article{10.11648/j.ijmb.20261103.12,
author = {Adama Diakite and Mohamed Adama Diakite and Fatoumata Dembele and Kassoum Samake and Christiane Dembele and Martin Dakouo and Cheick Abou Kounta Sidibe and Boubacar Madio Dit Aladiogo Maiga and Mamadou Niang and Lassina Ouattara and Angelique Angot and Enrico Savegnago and Alice Fusaro and Amadou Kone and Isabella Monne and Antoine Dara},
title = {Molecular and Phylogenetic Analysis of the Highly Pathogenic Avian Influenza Virus H5N1 Detected in Mali During the 2021 and 2022 Outbreaks},
journal = {International Journal of Microbiology and Biotechnology},
volume = {11},
number = {3},
pages = {106-114},
doi = {10.11648/j.ijmb.20261103.12},
url = {https://doi.org/10.11648/j.ijmb.20261103.12},
eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ijmb.20261103.12},
abstract = {Highly pathogenic avian influenza (HPAI) H5N1 continues to pose a significant threat to animal health, poultry production, and public health worldwide. Mali experienced two outbreaks of Highly Pathogenic Avian Influenza (HPAI) H5N1 in 2021 and 2022, raising concerns about viral evolution and potential public health risks in West Africa. Suspected samples (Tissue and swab) collected from sick and dead birds during these outbreaks were analyzed at the Central Veterinary Laboratory of Bamako using quantitative real-time PCR. Whole-genome sequencing was performed on thirteen H5N1-positive samples using the Illumina MiSeq platform with a paired-end sequencing approach. Phylogenetic analyses were conducted using the maximum-likelihood method implemented in IQ-TREE v1.6.6. Phylogenetic analysis of the hemagglutinin (HA) gene revealed that all detected viruses belonged to clade 2.3.4.4b and clustered closely with strains previously reported in West Africa. In-depth analysis of the whole genome phylogenetic topology revealed the emergence of an H9N2/H5N1 reassortant strain during the 2022 outbreak. Molecular characterization of all eight genomic segments identified several mutations associated with host specificity, including markers linked to adaptation in gallinaceous poultry and mutations potentially associated with increased zoonotic potential. These findings demonstrate the continued genetic evolution of H5N1 viruses circulating in Mali and emphasize the importance of sustained genomic surveillance. Strengthening hygiene practices and biosecurity measures in poultry farms, live bird markets, and slaughterhouses is essential to reduce the risks posed to both animal and public health.},
year = {2026}
}
TY - JOUR T1 - Molecular and Phylogenetic Analysis of the Highly Pathogenic Avian Influenza Virus H5N1 Detected in Mali During the 2021 and 2022 Outbreaks AU - Adama Diakite AU - Mohamed Adama Diakite AU - Fatoumata Dembele AU - Kassoum Samake AU - Christiane Dembele AU - Martin Dakouo AU - Cheick Abou Kounta Sidibe AU - Boubacar Madio Dit Aladiogo Maiga AU - Mamadou Niang AU - Lassina Ouattara AU - Angelique Angot AU - Enrico Savegnago AU - Alice Fusaro AU - Amadou Kone AU - Isabella Monne AU - Antoine Dara Y1 - 2026/07/24 PY - 2026 N1 - https://doi.org/10.11648/j.ijmb.20261103.12 DO - 10.11648/j.ijmb.20261103.12 T2 - International Journal of Microbiology and Biotechnology JF - International Journal of Microbiology and Biotechnology JO - International Journal of Microbiology and Biotechnology SP - 106 EP - 114 PB - Science Publishing Group SN - 2578-9686 UR - https://doi.org/10.11648/j.ijmb.20261103.12 AB - Highly pathogenic avian influenza (HPAI) H5N1 continues to pose a significant threat to animal health, poultry production, and public health worldwide. Mali experienced two outbreaks of Highly Pathogenic Avian Influenza (HPAI) H5N1 in 2021 and 2022, raising concerns about viral evolution and potential public health risks in West Africa. Suspected samples (Tissue and swab) collected from sick and dead birds during these outbreaks were analyzed at the Central Veterinary Laboratory of Bamako using quantitative real-time PCR. Whole-genome sequencing was performed on thirteen H5N1-positive samples using the Illumina MiSeq platform with a paired-end sequencing approach. Phylogenetic analyses were conducted using the maximum-likelihood method implemented in IQ-TREE v1.6.6. Phylogenetic analysis of the hemagglutinin (HA) gene revealed that all detected viruses belonged to clade 2.3.4.4b and clustered closely with strains previously reported in West Africa. In-depth analysis of the whole genome phylogenetic topology revealed the emergence of an H9N2/H5N1 reassortant strain during the 2022 outbreak. Molecular characterization of all eight genomic segments identified several mutations associated with host specificity, including markers linked to adaptation in gallinaceous poultry and mutations potentially associated with increased zoonotic potential. These findings demonstrate the continued genetic evolution of H5N1 viruses circulating in Mali and emphasize the importance of sustained genomic surveillance. Strengthening hygiene practices and biosecurity measures in poultry farms, live bird markets, and slaughterhouses is essential to reduce the risks posed to both animal and public health. VL - 11 IS - 3 ER -