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Authors Lang

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Lang, Christian


Publications
3

CitationNamesAbstract
First report of ‘ Candidatus Arsenophonus phytopathogenicus’ in maize ( Zea mays L.) in Germany Benaouda et al. (2026). Plant Disease Ca. Arsenophonus phytopathogenicus Ca. Phytoplasma solani
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Prevalence in Potato of ‘Candidatus Arsenophonus Phytopathogenicus’ and ‘Candidatus Phytoplasma Solani’ and Their Transmission via Adult Pentastiridius leporinus Rinklef et al. (2024). Insects 15 (4) Arsenophonus Ca. Arsenophonus phytopathogenicus Ca. Phytoplasma Ca. Phytoplasma solani
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Potato (Solanum tuberosum) as a New Host for Pentastiridius leporinus (Hemiptera: Cixiidae) and Candidatus Arsenophonus Phytopathogenicus Behrmann et al. (2023). Insects 14 (3) Arsenophonus Ca. Arsenophonus phytopathogenicus
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First report of ‘ Candidatus Arsenophonus phytopathogenicus’ in maize ( Zea mays L.) in Germany
In Germany, maize (Zea mays L.) is cultivated on approximately 2.4 Mha, making it one of the most widely grown arable crops alongside wheat and barley (German Federal Statistical Office, 2025). Although maize has previously been identified as a host of Candidatus Phytoplasma solani (PHYPSO, 16SrXII-A), particularly in relation to maize redness (MR) disease detected in southeastern Europe (Jović et al., 2009), its role as a host of ‘Candidatus Arsenophonus phytopathogenicus’ (ARSEPH) has not been reported previously. The planthopper Pentastiridius leporinus (Hemiptera: Cixiidae) is the major vector for transmitting both pathogens in many crops in Germany (Rinklef et al., 2024). MR symptoms include patchy premature drying, reddish discoloration of leaves and midribs, poorly filled or aborted ears, and malformed kernels. In August and September 2025, maize plants showing MR-like symptoms were observed in different fields in Otzberg 49°48'25.3"N, 8°52'28.8"E (South Hesse), Bellheim 49°10′19.9N, 8°15′50.8E, Bockenheim 49°36'18.6"N, 8°11'30. E"O, Ibersheim 49°43′36.5″N, 8°24′34.6″E (Rhineland-Palatinate) and Ettling 48°48'50.0"N, 11°40'17.2"E (Baden-Württemberg). Samples from roots (25), leaves (10), ears (14) and kernels (9) of 14 selected symptomatic plants were collected for molecular analysis. DNA was extracted using a CTAB-based protocol. ARSEPH was detected by qPCR targeting the manA gene according to Zübert and Kube (2021). Positive results were obtained from ears of six plants from Ibersheim and Ettling, leaves of three plants from Bockenheim and Otzberg, kernels of two plants from Bellheim, and roots of one plant from Bockenheim. Four ARSEPH-positive samples (two ears and two kernels) were further analyzed using the Fra4/Fra5 PCR assay (Zreik et al. 1998). Sanger sequencing of the resulting amplicons followed by BLAST analysis confirmed all four sequences as ‘Candidatus Arsenophonus phytopathogenicus’ with 100% identity to reference sequence PP400342. The sequences have been deposited in GenBank under accession numbers PZ623476, PZ623478, PZ623483, and PZ626926. Furthermore, all samples were screened for PHYPSO using the qPCR assay described by Behrmann et al. (2022) with primers KL464/KL465. Seven ear samples from Ibersheim yielded positive qPCR signals. To further validate these results, DNA from qPCR-positive samples was subjected to nested PCR targeting the 16S rRNA gene using primer pairs P1/P7 (Schneider et al., 1995) and R16F2n/R16R2 (Gundersen and Lee, 1996), followed by Sanger sequencing and BLAST analysis against the NCBI GenBank database. However, repeated sequencing did not provide sufficient sequence identity to the reference strain STOL11 (GenBank accession number AF248959) to confirm the qPCR-positive samples as PHYPSO. To our knowledge, this is the first report of ARSEPH in maize in Germany. Its detection in maize extends the known host range of this phloem-limited bacterium. The high ARSEPH loads in ears and kernels detected in reproductive tissues are consistent with preferential accumulation in sink organs during grain filling. Whether maize contributes to pathogen persistence and transmission within the Pentastiridius leporinus or other potential vectors’ pathosystem remains to be investigated.
Prevalence in Potato of ‘Candidatus Arsenophonus Phytopathogenicus’ and ‘Candidatus Phytoplasma Solani’ and Their Transmission via Adult Pentastiridius leporinus
The planthopper Pentastiridius leporinus (Hempiptera: Cixiidae) is the main vector of two bacterial pathogens: the γ-proteobacterium ‘Candidatus Arsenophonus phytopathogenicus’ and the stolbur phytoplasma ‘Candidatus Phytoplasma solani’. These pathogens cause the disease syndrome basses richesses (SBR) in sugar beet (Beta vulgaris), which reduces the yields and sugar content. In 2022, potato (Solanum tuberosum) fields were found to be colonized by P. leporinus, and the transmission of Arsenophonus was confirmed, resulting in symptoms like wilting, yellow leaves, and rubbery tubers. We monitored both pathogens in Southwest Germany in 2022 and 2023. This revealed their widespread presence in potato tubers, although there were differences in regional prevalence. The broad prevalence of Arsenophonus was maintained in 2023, whereas the prevalence of stolbur increased in most locations. We confirmed that P. leporinus adults can transmit both pathogens to potatoes, but neither pathogen reduced the germination rate of tubers, and no plants showed abnormal growth after germination. Arsenophonus was not detected in germinated shoots, but 5.4% contained stolbur, emphasizing the need for plant material testing to maintain phytosanitary conditions.
Potato (Solanum tuberosum) as a New Host for Pentastiridius leporinus (Hemiptera: Cixiidae) and Candidatus Arsenophonus Phytopathogenicus
Pentastiridius leporinus is a planthopper (Hemiptera: Cixiidae) that vectors two phloem-restricted bacterial pathogens to sugar beet (Beta vulgaris (L.)): the γ-proteobacterium Candidatus Arsenophonus phytopathogenicus and the stolbur phytoplasma Candidatus Phytoplasma solani. These bacteria cause an economically important disease known as syndrome basses richesses (SBR), characterized by yellowing, deformed leaves and low beet yields. Having observed potato fields in Germany infested with cixiid planthoppers and showing signs of leaf yellowing, we used morphological criteria and COI and COII as molecular markers, to identify the planthoppers (adults and nymphs) primarily as P. leporinus. We analyzed planthoppers, potato tubers, and sugar beet roots and detected both pathogens in all sample types, confirming that P. leporinus adults and nymphs can transmit the bacteria. This is the first time that P. leporinus has been shown to transmit Arsenophonus to potato plants. We also found that two generations of P. leporinus were produced in the warm summer of 2022, which will probably increase the pest population size (and thus the prevalence of SBR) in 2023. We conclude that P. leporinus has expanded its host range to potato, and can now utilize both host plants during its developmental cycle, a finding that will facilitate the development of more efficient control strategies.
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