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Pennanen, T.

Publications and source records attributed to Pennanen, T..

3 recordsLinked to original sources

Scalable isolation of soil genomic DNA from microbes to multicellular micro- and mesofauna

Global initiatives emphasize the need for harmonized soil biodiversity assessments. Efficient DNA extraction methods that accommodate larger soil volumes are essential for capturing higher trophic levels than bacteria and fungi and supporting extensive sampling campaigns. We developed and evaluated a scalable, cost-efficient, and automation-ready soil DNA isolation technique alongside commercial protocols. Three starting soil amounts (0.25 g, 2.5 g, and 5 g) were tested using widely used Qiagen kits, the developed isolation method, or combinations thereof. Lysis volumes ranged from 800 {micro}l to 15 ml, and purification employed either silica membrane or carboxyl-coated magnetic beads. Four different types of soil, both agricultural and forest soil, samples were sequenced on an Illumina MiSeq platform using universal eukaryotic primers targeting the 18S rRNA SSU region, enabling detection of non-fungal eukaryotes such as soil mesofauna and protozoa. The developed protocol, which combined a tenfold increase in sample volume with hybrid purification steps, yielded the highest DNA recovery and consistently improved detected richness in several soil types. Species richness patterns varied by soil type and organism group: for eukaryotes and protozoa, commercial maxiprep methods along with the combination methods outperformed the miniprep approach in agricultural soils, while the developed technique excelled in coarse xeric forest soils. For metazoans, larger extraction volumes were associated with higher richness in forest soils. Our findings indicate that at least a tenfold increase in soil input compared to conventional 0.2-0.3 g is required to reliably capture mesofaunal diversity, with preliminary evidence suggesting further benefits at 20-fold volumes. We confirm that extraction volume is a key factor shaping detection of both soil metazoan and protozoan community compositions, with effects varying by soil type and organism group. The developed scalable approach offers a practical solution for large-scale soil biodiversity assessments, aligning with global monitoring goals and enabling integration of higher trophic levels into eDNA-based frameworks.

microbiology↗

Carrot storage diseases predominantly caused by mixed fungal infections

Fungal pathogens often cause severe post-harvest losses in stored carrot yields. In 2020 and 2021, carrot samples were collected in Finland from 26 fields with different soil types. The proportion of symptomatic carrots was assessed at two time points during the cold storage period. To analyse the occurrence of different fungal pathogens in the symptomatic carrots, DNA samples were prepared and tested for the presence of fungal pathogens by species-specific PCR. The most frequently detected pathogens were Cylindrocarpon spp. with 61% occurrence, followed by Fusarium avenaceum (44%), Mycocentrospora acerina (42%), Botrytis cinerea (12%), and Alternaria spp. (0.8%). B. cinerea and F. avenaceum were more common in carrots grown on organic soil type, while M. acerina was more common in carrots grown on mineral soils. Mixed fungal infections were overrepresented in the symptomatic samples, in particular, Cylindrocarpon spp. often occurred together with F. avenaceum and M. acerina in the same samples. Amplicon sequencing of the fungal internal transcribed spacer region from the DNA of symptomatic tissues revealed that in addition to the pathogens - B. cinerea, M. acerina, Cylindrocarpon spp. and Sclerotinia sclerotiorum - the hyphomycete fungi Tetracladium spp. and the yeast Leucosporidium intermedium were abundant, and that Tetracladium spp. were more abundant in the carrots infected with M. acerina. A pathogenicity test confirmed that F. avenaceum is pathogenic to both the new season and old season carrots.

plant biology↗

High microbial diversity in the rhizosphere and soil improve carrot (Daucus carota L.) postharvest storability

Postharvest diseases can cause significant losses in carrot (Daucus carota) yield during storage. In this study, the effects of soil quality and microbial diversity in the field bulk soil and rhizosphere on the development of postharvest diseases were investigated. Microbial genera in bulk soil and rhizosphere samples were identified by Illumina Miseq amplicon sequencing of bacterial 16S and fungal ITS regions. Disease symptoms in the stored carrots were monitored after six months of cold storage, and the main pathogens were identified. The field sites with mineral soils, which had a higher pH, had a higher bacterial and fungal diversity than organic soils. The organically managed fields had a higher bacterial diversity than the conventionally managed fields. Community structure of both bacteria and fungi was largely driven by field site including its main chemical characteristics, with rhizosphere and bulk soil samples from the same site displaying comparable assemblages. Higher soil microbial diversity was associated with higher postharvest storability in the stored carrots. The weather during the growing season also had an effect on the observed fungal biodiversity, which was higher at sites that had lower temperatures and less rain prior to harvest.

microbiology↗