The venom gland of predatory cone snails (Conus spp.), which secretes neurotoxic peptides that rapidly immobilize prey, is a proposed key innovation for facilitating the extraordinary feeding behaviour of these gastropod molluscs. Nevertheless, the unusual morphology of this gland has generated controversy about its evolutionary origin and possible homologues in other gastropods. I cultured feeding larvae of Conus lividus and cut serial histological sections through the developing foregut during larval and metamorphic stages to examine the development of the venom gland. Results support the hypothesis of homology between the venom gland and the mid-oesophageal gland of other gastropods. They also suggest that the mid-region of the gastropod foregut, like the anterior region, is divisible into dorsal and ventral developmental modules that have different morphological, functional and ontogenetic fates. In larvae of C. lividus, the ventral module of the middle foregut transformed into the anatomically novel venom gland of the post-metamorphic stage by rapidly pinching-off from the main dorsal channel of the mid-oesophagus, an epithelial remodelling process that may be similar to other cases where epithelial tubes and vesicles arise from a pre-existing epithelial sheet. The developmental remodelling mechanism could have facilitated an abrupt evolutionary transition to the derived morphology of this important gastropod feeding innovation.
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http://dx.doi.org/10.1098/rspb.2011.0501 | DOI Listing |
Toxicon
January 2025
Department of Biology, School of Science, Shahid Chamran University of Ahvaz, Ahvaz, Iran. Electronic address:
SARS-CoV-2 is from the enveloped virus family responsible for the COVID-19 pandemic. No efficient drugs are currently available to treat infection explicitly caused by this virus. Therefore, searching for effective treatments for severe illness caused by SARS-CoV-2 is crucial.
View Article and Find Full Text PDFMicroorganisms
December 2024
Key Laboratory of Genetic Evolution & Animal Models, Engineering Laboratory of Peptides of Chinese Academy of Sciences, Key Laboratory of Bioactive Peptides of Yunnan Province, KIZ-CUHK Joint Laboratory of Bioresources and Molecular Research in Common Diseases, National Resource Center for Non-Human Primates, and Sino-African Joint Research Center, New Cornerstone Science Laboratory, Kunming Institute of Zoology, The Chinese Academy of Sciences, Kunming 650201, China.
The venoms of Theraphosidae spiders have evolved into diverse natural pharmacopeias through selective pressures. is a global health threat that frequently causes life-threatening meningitis and fungemia, particularly in immunocompromised patients. In this study, we identify a novel anti- peptide, QS18 (QCFKVCFRKRCFTKCSRS), from the venom gland of China's native spider species by utilizing bioinformatic tools.
View Article and Find Full Text PDFAntibiotics (Basel)
November 2024
Department of Life Science, Dongguk University-Seoul, Goyang 10326, Republic of Korea.
Trans R Soc Trop Med Hyg
January 2025
Department of Radiodiagnosis, Dr RPGMC, Tanda, Kangra (HP) India 176001.
We describe a series of five patients with bilateral parotid enlargement as a sequalae to envenomation by the common krait (Bungarus caeruleus). Fine-needle aspiration cytology of the parotid gland was performed in four cases. The cytology revealed a mild lymphocytic inflammatory response in a red blood cell mixed proteinaceous background.
View Article and Find Full Text PDFToxins (Basel)
November 2024
Facultad de Ciencias Exactas y Naturales, Pontificia Universidad Católica del Ecuador, Quito 170525, Ecuador.
Previous proteomic studies of viperid venom revealed that it is mainly composed of metalloproteinases (SVMPs), serine proteinases (SVSPs), phospholipase A2 (PLA2), and C-type lectins (CTLs). However, other proteins appear in minor amounts that affect prey and need to be identified. This study aimed to identify novel toxic proteins in the venom gland transcriptome of and , using data from NCBI.
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