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Hanak, A.

Publications and source records attributed to Hanak, A..

3 recordsLinked to original sources

Construction of a reference genome for Starmerella batistae and annotation of Starmerella species reveal a close evolutionary relationship with Schizosaccharomyces pombe and suggest an alternative pathway for sophorolipid production.

The Starmerella clade is known for displaying osmotolerant and acidophilic traits from their association with bees. Several species in this genus can produce sophorolipids, which are commercially produced as biosurfactants. Here, we isolated a yeast contaminant from the laboratory environment, identified as Starmerella batistae, able to thrive under low pH, including high concentrations of lactic acid, and relative high temperatures. We have sequenced and conducted a de novo genome assembly in three chromosomes and a mitochondrial genome for S. batistae (ca 9.3 Mb). Based on this reference genome we functionally annotated 29 different Starmerella species, using the publicly available sequences. Phylogenetic analysis across different yeast clades revealed a close relationship of Starmerella species with Schizosaccharomyces yeasts. Fifteen genes were uniquely shared between Sz. pombe and S. batistae, of which twelve were involved in cell morphology. Interestingly, the shape of S. batistae cells is elongated rather than round, similar to the Sz. pombe. Additionally, we found that all the Starmerella strains capable of producing sophorolipids shared a last common ancestor. Such clustering can help identify other sophorolipid-producing Starmerella yeasts that have not yet been characterised. We did not find the one-to-one orthologs of S. bombicola sophorolipid pathway in any of the Starmerella sp. with the exception of S. kuoi, S. powellii and S. floricola. In S. etchelsii, the antisense and telomeric pair UGTA1/CYP52M1 was found to be structurally conserved although not functionally. These findings support the notion that alternative pathways for the production of sophorolipids have evolved in different Starmerella lineages.

genomics↗

Unveiling the genetic basis of the low pH response in the acidophilic yeast Maudiozyma bulderi as a potential host for biorefinery

Non-conventional yeasts represent a great genetic and phenotypic diversity with potential for industrial strain development in the bio-production of green chemicals. In recent years, mass genome sequencing of non-conventional yeasts has opened avenues to improved understanding of transcriptional networks and phenotypic plasticity and gene function, including the discovery of novel genes. Here, we investigated the expressional and morphological changes at low-pH in three strains of the acidophilic yeast Maudiozyma bulderi (previously Kazachstania bulderi and Saccharomyces bulderi): CBS 8638, CBS 8639 and NRRL Y-27205. The comparison of the transcriptome of cells growing in a bioreactor at pH=5.5 vs pH= 2.5, primarily showed dysregulation of genes involved in cell wall integrity, with NRRL Y-27205 the least acidophilic strain, showing the largest transcriptional response when compared to the other two strains. We identified four uncharacterised genes, unique to M. bulderi, and predicted function as transporters, upregulated at low pH. Microscopy studies showed that M. bulderi cell wall is not damaged in acidic environment, and the membrane lipid composition remains stable at low pH, unlike S. cerevisiae. Overall, our data on transcriptional variability in M. bulderi highlights genes and cellular pathways involved in the acidophilic adaptation of this species and can aid further strain development.

genomics↗

High quality de novo genome assembly of non-conventional yeast Kazachstania bulderi a new potential low pH production host for biorefineries.

Kazachstania bulderi is a yeast species belonging to a ubiquitous group of non-conventional yeasts which has the ability to grow efficiently on glucose and {delta}-gluconolactone at low pH. This unique trait makes K. bulderi an ideal candidate as a new host for low pH fermentation processes for sustainable production of green chemicals such as organic acids. To accelerate strain development with this species, detailed information of its genetics is needed. Here, by employing high accuracy long read sequencing we report a high-quality phased genome assembly for three strains belonging to K. bulderi species, including the type strain. The sequences were assembled into 12 chromosomes with a total length of 14Mb, and the genome was fully annotated at structural and functional levels, including allelic and structural variants, ribosomal array, centromeres and mating type locus. This high-quality reference genome provides an essential resource to advance our fundamental knowledge of biotechno-logically relevant non-conventional yeasts and to support the development of genetic tools for manipulating such strains towards their use as production hosts biotechnological processes.

genomics↗