Evidence map›Paper›PMID 42373997›Full record

ArticleApplied microbiology and biotechnology2026

Hybrid genome assembly and phenotypic assays reveal carbohydrate metabolism diversity in Lacticaseibacillus strains.

Emanuele Della Monica, Worarat Kruasuwan, Natnicha Wankaew, Tantip Arigul, Thidathip Wongsurawat, Camilla Lazzi, Monica Gatti, Alessia Levante

Abstract read
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Article in Applied microbiology and biotechnology, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 1 paper.

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1citing papers in PubMed
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1 · What the graph read from it

What it found

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3 · Its place in the literature

Who cites it

1 citing paper in PubMed.

  1. The Effects ofMicroorganisms · 2026
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4 · The record

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5 · Who and what money

Authors and funding

8 authors.

Emanuele Della MonicaDepartment of Food and Drug, University of Parma, 43124, Parma, Italy.
Worarat KruasuwanOxford Nanopore Centre of Excellence (CoE), Research Department, Faculty of Medicine Siriraj Hospital, Mahidol University, Bangkok, Thailand. worarat.kru@mahidol.ac.th.
Natnicha WankaewOxford Nanopore Centre of Excellence (CoE), Research Department, Faculty of Medicine Siriraj Hospital, Mahidol University, Bangkok, Thailand.
Tantip ArigulOxford Nanopore Centre of Excellence (CoE), Research Department, Faculty of Medicine Siriraj Hospital, Mahidol University, Bangkok, Thailand.
Thidathip WongsurawatOxford Nanopore Centre of Excellence (CoE), Research Department, Faculty of Medicine Siriraj Hospital, Mahidol University, Bangkok, Thailand.
Camilla LazziDepartment of Food and Drug, University of Parma, 43124, Parma, Italy.
Monica GattiDepartment of Food and Drug, University of Parma, 43124, Parma, Italy.
Alessia LevanteDepartment of Food and Drug, University of Parma, 43124, Parma, Italy. alessia.levante@unipr.it.ORCID https://orcid.org/0000-0003-1985-2863

Funding

No grant is acknowledged in the PubMed record.

6 · The paper itself

Abstract

Investigation of carbohydrate metabolism in lactic acid bacteria is essential for the rational selection of strains for fermentation processes, particularly in emerging applications involving non-conventional substrates or building of synthetic microbial consortia. However, establishing robust genotype-phenotype relationships remains challenging, as gene presence alone often fails to explain observed metabolic traits without considering the genomic context and regulatory architecture. In the present study, we combined hybrid genome assembly (Illumina and Oxford Nanopore) with high-throughput phenotype profiling (Biolog GENIII and PM2A) to investigate carbohydrate utilization in five Lacticaseibacillus strains. Phenotypic assays revealed clear intra- and inter-specific variability in substrate utilization. We therefore investigated whether such differences could be attributed to the organization and regulatory context of carbohydrate-associated loci, rather than to gene presence alone. Functional annotation based on COG and CAZyme databases revealed candidate genomic regions potentially involved in carbohydrate metabolism. Comparative analysis between predicted and experimentally observed substrate usage highlighted specific loci associated with carbohydrate utilization profile. The trehalose (tre) operon was conserved across all strains, while at least two distinct cellobiose-associated loci were detected in each genome. Despite the presence of these loci, L. paracasei strains were unable to metabolize cellobiose, a phenotype likely linked to the presence of a downstream TetR-type transcriptional repressor within the cellobiose (cel) operon. Additionally, a genomic region uniquely found in L. rhamnosus strains was associated with gentiobiose utilization, consistent with phenotypic observations. Overall, these findings highlight the importance of integrating phenotypic validation with complete genome context to support the identification of candidate structural and regulatory determinants of carbohydrate utilization in lactic acid bacteria. KEY POINTS: • Phenotype microarrays reveal metabolic traits of interest in isolated strains. • Regulatory context is key to understanding carbohydrate metabolism differences. • Basis of subspecies-dependent cellobiose metabolism in L. paracasei is provided.

Indexed as

Carbohydrate MetabolismGenome, BacterialLactobacillalesCellobioseGenomicsPhenotypeCellobioseCarbohydrate metabolismCAZyme gene clustersComparative genomicsHybrid genome assemblyLacticaseibacillus spp.Phenotype microarray

Identifiers

PMID42373997
PMCPMC13578153

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