Disruption of insect immunity using analogs of the pleiotropic insect peptide hormone Neb-colloostatin: a nanotech approach for pest control II.


Journal

Scientific reports
ISSN: 2045-2322
Titre abrégé: Sci Rep
Pays: England
ID NLM: 101563288

Informations de publication

Date de publication:
04 05 2021
Historique:
received: 27 12 2020
accepted: 06 04 2021
entrez: 5 5 2021
pubmed: 6 5 2021
medline: 2 2 2023
Statut: epublish

Résumé

This work continues our studies on the pleiotropic activity of the insect peptide Neb-colloostatin in insects. In vivo immunological bioassays demonstrated that hemocytotoxic analogs of Neb-colloostatin injected into Tenebrio molitor significantly reduced the number of hemocytes in the hemolymph and impaired phagocytosis, nodulation and phenoloxidase activities in the insects. Among the analogs tested, [Ala

Identifiants

pubmed: 33947876
doi: 10.1038/s41598-021-87878-5
pii: 10.1038/s41598-021-87878-5
pmc: PMC8097067
doi:

Substances chimiques

Insect Hormones 0
Nanodiamonds 0
Neb-colloostatin 0
Peptide Hormones 0

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

9459

Commentaires et corrections

Type : ErratumIn

Références

Chandler, D. et al. The development, regulation and use of biopesticides for integrated pest management. Philos. Trans. R. Soc. B 366, 1987–1998 (2011).
doi: 10.1098/rstb.2010.0390
Benheim, D. et al. Grape phylloxera (Daktulosphaira vitifoliae) a review of potential detection and alternative management options. Ann. Appl. Biol. 161, 91–115 (2012).
doi: 10.1111/j.1744-7348.2012.00561.x
Matsuda, K. et al. Neonicotinoids: insecticides acting on insect nicotinic acetylcholine receptors. Trends Pharmacol. Sci. 22, 573–580 (2001).
doi: 10.1016/S0165-6147(00)01820-4 pubmed: 11698101
Silver, K. S. et al. Voltage-gated sodium channels as insecticide targets. Adv. Insect Phys. 46, 389–433 (2014).
doi: 10.1016/B978-0-12-417010-0.00005-7
Abreu-Villaca, Y. & Levin, E. D. Developmental neurotoxicity of succeeding generations of insecticides. Environ. Int. 99, 55–77 (2017).
doi: 10.1016/j.envint.2016.11.019 pubmed: 27908457
Bjørling-Poulsen, M., Andersen, H. R. & Grandjean, P. Potential developmental neurotoxicity of pesticides used in Europe. Environ. Health 7, 50 (2008).
pubmed: 18945337 pmcid: 2577708 doi: 10.1186/1476-069X-7-50
Cloyd, R. Indirect effects of pesticides on natural enemies in Pesticides - Advances in chemical and botanical pesticides (ed. Soundararajan, R.P.) 127–150 (IntechOpen, 2012).
Nicolopoulou-Stamati, P. et al. Chemical pesticides and human health: the urgent need for a new concept in agriculture. Front. Public Health 4, 148 (2016).
pubmed: 27486573 pmcid: 4947579 doi: 10.3389/fpubh.2016.00148
Kim, S.-K. Trophic transfer of organochlorine pesticides through food-chain in coastal marine ecosystem. Environ. Eng. Res. 25, 43–51 (2020).
doi: 10.4491/eer.2019.003
Haase, S., Sciocco-Cap, A. & Romanowski, V. Baculovirus insecticides in Latin America: Historical overview, current status and future perspectives. Viruses 7, 2230–2267 (2015).
pubmed: 25941826 pmcid: 4452904 doi: 10.3390/v7052230
Then, C. & Bauer-Panskus, A. Possible health impacts of Bt toxins and residues from spraying with complementary herbicides in genetically engineered soybeans and risk assessment as performed by the European Food Safety Authority EFSA. Environ. Sci. Eur. 29, 1 (2017).
pubmed: 28133586 pmcid: 5236067 doi: 10.1186/s12302-016-0099-0
Sabino, P. H. S. et al. Compatibility of entomopathogenic nematodes (Nematoda: Rhabditida) with insecticides used in the tomato crop. Nematoda 1, e03014 (2014).
doi: 10.4322/nematoda.03014
Hamby, K. A. et al. Biotic and abiotic factors impacting development, behavior, phenology and reproductive biology of Drosophila suzukii. J. Pest. Sci. 89, 605–619 (2016).
doi: 10.1007/s10340-016-0756-5
Oliver, M. J. Why we need GMO crops in agriculture. Mol. Med. 111, 492–507 (2016).
Hartfelder, K. Insect juvenile hormone: from „status quo” to high society. Braz. J. Med. Biol. Res. 33, 157–177 (2000).
doi: 10.1590/S0100-879X2000000200003 pubmed: 10657056
Hardy, M. C. et al. Isolation of an orally active insecticidal toxin from the venom of australian tarantula. PLoS ONE 8, e73136 (2013).
pubmed: 24039872 pmcid: 3770646 doi: 10.1371/journal.pone.0073136
Borovsky, D. et al. Mosquito oostatic factor: a novel decapeptide modulating trypsin-like enzyme biosynthesis in the midgut. FASEB J. 4, 3015–3020 (1990).
doi: 10.1096/fasebj.4.12.2394318 pubmed: 2394318
Borovsky, D. & Mahmood, F. Feeding the mosquito Aedes aegypti with TMOF and its analogs: Effect on trypsin biosynthesis and egg development. Regul. Pept. 57, 273–281 (1995).
doi: 10.1016/0167-0115(95)00041-9 pubmed: 7480877
Nachman, R. J., Isaac, R. E., Coast, G. M. & Holman, G. M. Aib-cointaining analogues of the insect kinin neuropeptide family demonstrate resistance to an insect angiotensin-converting enzyme and potent diuretic activity. Peptides 18, 53–57 (1997).
doi: 10.1016/S0196-9781(96)00233-1 pubmed: 9114452
Strratt, A. N., Lange, A. B. & Orchard, I. N-teminal modified analogs of HVFLRFamide with inhibitory activity on the locust oviduct. Peptides 2, 197–203 (2000).
doi: 10.1016/S0196-9781(99)00197-7
Borovsky, D. Trypsin-modulating oostatic factor: a potential new larvicide for mosquito control. J. Exp. Biol. 206, 3869–3875 (2003).
doi: 10.1242/jeb.00602 pubmed: 14506222
Scherkenbeck, J. & Zgobinsky, T. Insect neuropeptides: structures, chemical modifications and potential for insect control. Bioorg. Med. Chem. 17, 4071–4084 (2009).
doi: 10.1016/j.bmc.2008.12.061 pubmed: 19186060
Teal, P. E. A., Meredith, J. A. & Nachman, R. J. Comparison of rates of penetration through insect cuticle of amphiphylic analogs of insect pyrokinin neuropeptides. Peptides 20, 63–70 (1999).
doi: 10.1016/S0196-9781(98)00154-5 pubmed: 10098625
Nachman, R. J. Peptidomics applied: A new strategy for development of selective antagonists/agonists of insect pyrokinin (FXPRLamide) family using a novel conformational-mimetic motif. EuPA Open Proteom. 3, 138–142 (2014).
doi: 10.1016/j.euprot.2014.02.008
Zhang, C. et al. Eco-friendly insecticide discovery via peptidomimetics: design, synthesis, and aphicidal activity of novel Insect kinin analogues. J. Agric. Food Chem. 63, 4527–4532 (2015).
doi: 10.1021/acs.jafc.5b01225 pubmed: 25912216
Kuczer, M. et al. New proctolin analogues: Synthesis and biological investigation in insects. Int. J. Pept. Res. Ther. 5, 387–389 (1998).
doi: 10.1007/BF02443492
Nachman, R. J. et al. A nonpeptidal peptidomimetic agonist of the insect FLRFamide myosupressin family. Peptides 17, 313–320 (1996).
pubmed: 8801539 doi: 10.1016/0196-9781(95)02097-7
Nachman, R. J. et al. Potent phermonotropic/myotropic activity of a carboranyl pseudotetrapeptide analogue of the insect pyrokinin/PBAN neuropeptide family administered via injection or topical application. Peptides 17, 747–752 (1996).
pubmed: 8844762 doi: 10.1016/0196-9781(96)00111-8
Nachman, R. J. et al. An amphiphilic, PK/PBAN analog is a selective pheromonotropic antagonist that penetrates the cuticle of a heliothine insect. Peptides 30, 616–621 (2009).
pubmed: 18992778 doi: 10.1016/j.peptides.2008.09.024
Zhang, Q. et al. Disruption of insect diapause using agonist and an antagonist of diapause hormone. Proc. Natl. Acad. Sci. USA 108, 16922–16926 (2011).
pubmed: 21940497 pmcid: 3193214 doi: 10.1073/pnas.1113863108
Nachman, R. J. et al. An aminoisobutyric acid-containing analogue of the cockroach tachykinin-related peptide, LemTRP-1, with a potent bioactivity and resistance to an insect angiotensin-converting enzyme. Regul. Pept. 74, 61–66 (1998).
doi: 10.1016/S0167-0115(98)00019-6 pubmed: 9657361
Yu, N. et al. Analogs of sulphakinin-related peptides demonstrate reduction in food intake in the red flour beetle, Tribolium castaneum, while putative antagonists increase consumption. Peptides 41, 107–112 (2013).
doi: 10.1016/j.peptides.2012.12.005 pubmed: 23246802
Matthews, H. J., Down, R. E. & Audsley, N. Effects on Manduca sexta allatostatin and an analogue on the peach-potato aphid Myzus persicae (Hemiptrea: Aphididae) and degradation by enzymes in the aphid gut. Arch. Insect Biochem. Physiol. 75, 139–157 (2010).
doi: 10.1002/arch.20376 pubmed: 20936640
Xie, Y. et al. Design, synthesis and biological activity of peptidomimetic analogs of insect allatostatins. Peptides 32, 581–586 (2011).
doi: 10.1016/j.peptides.2010.10.016 pubmed: 20969906
Bylemans, D. et al. Neb-colloostatin a second folliculostatin of the grey fleshfly Neobellieria bullata. Eur. J. Biochem. 228, 45–49 (1995).
doi: 10.1111/j.1432-1033.1995.tb20226.x pubmed: 7883009
Czarniewska, E., Rosiński, G., Gabała, E. & Kuczer, M. The natural insect peptide Neb-colloostatin induces ovarian atresia and apoptosis in the mealworm Tenebrio molitor. BMC Dev. Biol. 14, 4 (2014).
pubmed: 24479487 pmcid: 3909444 doi: 10.1186/1471-213X-14-4
Czarniewska, E. Hormonalna regulacja procesu rozrodu u owadów (Hormonal regulation of insect reproduction). Post Biol. Kom 40, 455–474 (2013).
Czarniewska, E., Mrówczyńska, L., Kuczer, M. & Rosiński, G. The pro-apoptotic action of the peptide hormone Neb-colloostatin on insect haemocytes. J. Exp. Biol. 215, 4308–4313 (2012).
pubmed: 22972894
Czarniewska, E., Nowicki, P., Kuczer, M. & Schroeder, G. Impairment of the immune response after transcuticular introduction of the insect gonadoinhibitory and hemocytotoxic peptide Neb-colloostatin: A nanotech approach for pest control. Sci. Rep. 9, 10330 (2019).
pubmed: 31316090 pmcid: 6637150 doi: 10.1038/s41598-019-46720-9
Kuczer, M., Czarniewska, E., Rosiński, G. & Lisowski, M. The pro-apoptotic action of new analogs of the insect gonadoinhibiting peptide Neb-colloostatin: Synthesis and structure-activity studies. Peptides 44, 149–157 (2013).
doi: 10.1016/j.peptides.2013.04.002 pubmed: 23598081
Czarniewska, E., Urbański, A., Chowański, S. & Kuczer, M. The long-term immunological effects of alloferon and its analogues in the mealworm Tenebrio molitor. Insect Sci. 25, 429–438 (2018).
doi: 10.1111/1744-7917.12427 pubmed: 27925389
Sorrentino, R. P., Small, C. N. & Govind, S. Quantitative analysis of phenol oxidase activity in insect hemolymph. Biotechniques 32, 815–816 (2002).
doi: 10.2144/02324st08 pubmed: 11962604
Trauer, U. & Hilker, M. Parental legacy in insects: variation of transgenerational immune priming during offspring development. PLoS ONE 8, e63392 (2013).
pubmed: 23700423 pmcid: 3658988 doi: 10.1371/journal.pone.0063392
Siva-Jothy, M. T., Moret, Y. & Rolff, J. Insect immunity: An evolutionary ecology perspective. Adv. Insect Physiol. 32, 1–48 (2005).
doi: 10.1016/S0065-2806(05)32001-7
May, R. C. & Machesky, L. M. Phagocytosis and the actin cytoskeleton. J. Cell Sci. 114, 1061–1077 (2001).
doi: 10.1242/jcs.114.6.1061 pubmed: 11228151
Melcarne, C., Lemaitre, B. & Kurant, E. Phagocytosis in Drosophila: From molecules and cellular machinery to physiology. Insect Biochem. Mol. Biol. 109, 1–12 (2019).
doi: 10.1016/j.ibmb.2019.04.002 pubmed: 30953686
González-Santoyo, I. & Córdoba-Aguilar, A. Phenoloxidase: A key component of the insect immune system. Entomol. Exp. Appl. 142, 1–16 (2012).
doi: 10.1111/j.1570-7458.2011.01187.x
Hillyer, J. F. Insect immunology and hematopoiesis. Dev. Comp. Immunol. 58, 102–118 (2016).
doi: 10.1016/j.dci.2015.12.006 pubmed: 26695127
Dupré-Crochet, S., Erard, M. & Nüβe, O. ROS production in phagocytes: Why, when and where?. J. Leukocyt. Biol. 94, 657–669 (2013).
doi: 10.1189/jlb.1012544
Inoue, M. et al. Mitochondrial generation of reactive oxygen species and its role in aerobic life. Curr. Med. Chem. 10, 2495–2505 (2003).
pubmed: 14529465 doi: 10.2174/0929867033456477
Redza-Dutordoir, M. & Averill-Bates, D. A. Activation of apoptosis signalling pathways by reactive oxygen species. Biochem. Biophys. Acta 1863, 2977–2992 (2016).
pubmed: 27646922 doi: 10.1016/j.bbamcr.2016.09.012
Ramsey, H. & Wu, M. X. Mitochondrial anti-oxidant protects IEX-1 deficient mice from organ damage during endotoxemia. Int. Immunopharmacol. 23, 658–663 (2014).
pubmed: 25466275 pmcid: 4394602 doi: 10.1016/j.intimp.2014.10.019
Li, T. et al. Hemocyte changes during immune melanization in Bombyx mori infected with Escherichia coli. Insects 10, 301 (2019).
doi: 10.3390/insects10090301 pmcid: 6780253
Bowers, W. S. Insect hormones and their derivatives as insecticides. Bull. World Health Org. 44, 381–389 (1971).
pubmed: 4938025
Asano, T. & Ashida, M. Cuticular pro-phenoloxidase of the silkworm, Bombyx mori: Purification and demonstration of its transport from hemolymph. J. Biol. Chem. 14, 11100–11112 (2001).
doi: 10.1074/jbc.M008426200
Tokura, A. et al. Factors functioning in nodule melanization of insects and their mechanisms of accumulation in nodules. J. Insect Physiol. 60, 40–49 (2014).
doi: 10.1016/j.jinsphys.2013.11.003 pubmed: 24262307
Shrestha, S. & Kim, Y. Eicosanoids mediate prophenoloxidase release from oenocytoids in the beet armyworm Spodoptera exigua. Insect Biochem. Mol. Biol. 38, 99–112 (2008).
doi: 10.1016/j.ibmb.2007.09.013 pubmed: 18070669

Auteurs

Patryk Nowicki (P)

, Poznań, Poland.

Mariola Kuczer (M)

Faculty of Chemistry, University in Wrocław, F. Joliot-Curie Str. 14, 50-383, Wrocław, Poland.

Grzegorz Schroeder (G)

Faculty of Chemistry, Adam Mickiewicz University in Poznań, Uniwersytetu Poznańskiego Str. 8, 61-614, Poznań, Poland.

Elżbieta Czarniewska (E)

Department of Animal Physiology and Development, Institute of Experimental Biology, Faculty of Biology, Adam Mickiewicz University in Poznań, Uniwersytetu Poznańskiego Str. 6, 61-614, Poznań, Poland. czarniew@amu.edu.pl.

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