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Jan A Veenstra

Showing results (1-10 of 66) with videos related to

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Frontiers in Physiology|December 6, 2014
The contribution of the genomes of a termite and a locust to our understanding of insect neuropeptides and neurohormonesJan A Veenstra
Peptides|October 2, 2021
Identification of cells expressing Calcitonins A and B, PDF and ACP in Locusta migratoria using cross-reacting antisera and in situ hybridizationJan A Veenstra
Peerj|June 28, 2019
Coleoptera genome and transcriptome sequences reveal numerous differences in neuropeptide signaling between speciesJan A Veenstra
Insect Biochemistry and Molecular Biology|March 16, 2010
What the loss of the hormone neuroparsin in the melanogaster subgroup of Drosophila can tell us about its functionJan A Veenstra
General and Comparative Endocrinology|September 17, 2019
Most lepidopteran neuroparsin genes seem functional, but in some domesticated silkworm strains it has a fatal mutationJan A Veenstra
Cell and Tissue Research|March 26, 2009
Peptidergic paracrine and endocrine cells in the midgut of the fruit fly maggotJan A Veenstra
General and Comparative Endocrinology|February 15, 2023
Different neuroendocrine cell types in the pars intercerebralis of Periplaneta americana produce their own specific IGF-related peptidesJan A Veenstra
Peerj|July 31, 2020
Arthropod IGF, relaxin and gonadulin, putative orthologs of <i>Drosophila</i> insulin-like peptides 6, 7 and 8, likely originated from an ancient gene triplicationJan A Veenstra
Peerj|March 4, 2025
Neuropeptides from a praying mantis: what the loss of pyrokinins and tryptopyrokinins suggests about the endocrine functions of these peptidesJan A Veenstra
General and Comparative Endocrinology|January 19, 2011
Neuropeptide evolution: neurohormones and neuropeptides predicted from the genomes of Capitella teleta and Helobdella robustaJan A Veenstra
Pageof 7

Showing results (1-10 of 66) with videos related to

Sort By:
Pageof 7
Frontiers in Physiology|December 6, 2014
The contribution of the genomes of a termite and a locust to our understanding of insect neuropeptides and neurohormonesJan A Veenstra
Peptides|October 2, 2021
Identification of cells expressing Calcitonins A and B, PDF and ACP in Locusta migratoria using cross-reacting antisera and in situ hybridizationJan A Veenstra
Peerj|June 28, 2019
Coleoptera genome and transcriptome sequences reveal numerous differences in neuropeptide signaling between speciesJan A Veenstra
Insect Biochemistry and Molecular Biology|March 16, 2010
What the loss of the hormone neuroparsin in the melanogaster subgroup of Drosophila can tell us about its functionJan A Veenstra
General and Comparative Endocrinology|September 17, 2019
Most lepidopteran neuroparsin genes seem functional, but in some domesticated silkworm strains it has a fatal mutationJan A Veenstra
Cell and Tissue Research|March 26, 2009
Peptidergic paracrine and endocrine cells in the midgut of the fruit fly maggotJan A Veenstra
General and Comparative Endocrinology|February 15, 2023
Different neuroendocrine cell types in the pars intercerebralis of Periplaneta americana produce their own specific IGF-related peptidesJan A Veenstra
Peerj|July 31, 2020
Arthropod IGF, relaxin and gonadulin, putative orthologs of <i>Drosophila</i> insulin-like peptides 6, 7 and 8, likely originated from an ancient gene triplicationJan A Veenstra
Peerj|March 4, 2025
Neuropeptides from a praying mantis: what the loss of pyrokinins and tryptopyrokinins suggests about the endocrine functions of these peptidesJan A Veenstra
General and Comparative Endocrinology|January 19, 2011
Neuropeptide evolution: neurohormones and neuropeptides predicted from the genomes of Capitella teleta and Helobdella robustaJan A Veenstra
Pageof 7