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Multiplexed neuropeptide mapping in ant brains integrating microtomography and three-dimensional mass spectrometry imaging.
Geier, Benedikt; Gil-Mansilla, Esther; Liutkeviciute, Zita; Hellinger, Roland; Vanden Broeck, Jozef; Oetjen, Janina; Liebeke, Manuel; Gruber, Christian W.
Afiliação
  • Geier B; Department of Symbiosis, Max Planck Institute for Marine Microbiology, Bremen 28359, Germany.
  • Gil-Mansilla E; Department of Pediatrics and Infectious Diseases, Stanford School of Medicine, Stanford, CA 94305, USA.
  • Liutkeviciute Z; Center for Physiology and Pharmacology, Medical University of Vienna, Vienna 1090, Austria.
  • Hellinger R; Center for Physiology and Pharmacology, Medical University of Vienna, Vienna 1090, Austria.
  • Vanden Broeck J; Center for Physiology and Pharmacology, Medical University of Vienna, Vienna 1090, Austria.
  • Oetjen J; Molecular Developmental Physiology and Signal Transduction Group, Zoological Institute, KU Leuven, Leuven 3000, Belgium.
  • Liebeke M; Bruker Daltonics GmbH & Co. KG, Life Science Mass Spectrometry, Bremen 28359, Germany.
  • Gruber CW; MALDI Imaging Lab, University of Bremen, Bremen 28359, Germany.
PNAS Nexus ; 2(5): pgad144, 2023 May.
Article em En | MEDLINE | ID: mdl-37215633
ABSTRACT
Neuropeptides are important regulators of animal physiology and behavior. Hitherto the gold standard for the localization of neuropeptides have been immunohistochemical methods that require the synthesis of antibody panels, while another limiting factor has been the brain's opacity for subsequent in situ light or fluorescence microscopy. To address these limitations, we explored the integration of high-resolution mass spectrometry imaging (MSI) with microtomography for a multiplexed mapping of neuropeptides in two evolutionary distant ant species, Atta sexdens and Lasius niger. For analyzing the spatial distribution of chemically diverse peptide molecules across the brain in each species, the acquisition of serial mass spectrometry images was essential. As a result, we have comparatively mapped the three-dimensional (3D) distributions of eight conserved neuropeptides throughout the brain microanatomy. We demonstrate that integrating the 3D MSI data into high-resolution anatomy models can be critical for studying organs with high plasticity such as brains of social insects. Several peptides, like the tachykinin-related peptides (TK) 1 and 4, were widely distributed in many brain areas of both ant species, whereas others, for instance myosuppressin, were restricted to specific regions only. Also, we detected differences at the species level; many peptides were identified in the optic lobe of L. niger, but only one peptide (ITG-like) was found in this region in A. sexdens. Building upon MS imaging studies on neuropeptides in invertebrate model systems, our approach leverages correlative MSI and computed microtomography for investigating fundamental neurobiological processes by visualizing the unbiased 3D neurochemistry in its complex anatomic environment.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article