Commentary: The amygdaloid body of the family Delphinidae: a morphological study of its central nucleus through calbindin-D28k
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Le résumé fourni par la source
is a critical structure for the integration of sensory and affective information originating from cortical and subcortical regions. Functionally, it plays a crucial role in mediating fear-related behaviours and other mechanisms associated with learning, attention, decision-making and pain perception (LeDoux, 2000;Morris et al., 2002;Ochsner et al., 2002;Hsu et al., 2005;Fitzgerald et al., 2006;Adolphs, 2010;Bzdok et al., 2012;Ousdal et al., 2014;Bombardi et al., 2025).Clinically, in human and animal models, amygdaloid dysfunction is associated with various neurological diseases and psychiatric disorders (Sims & Williams, 1990;Pitkänen & Amaral, 1991), including anxiety and depression (Leppänen, 2006), panic disorder (Wiest et al., 2006;Nardi, 2009), and stress-related conditions (Fowler et al., 2017). Regarding dolphins, although the literature reports no clinical evidence of amygdaloid dysfunction, as noted by Sacchini et al. (2022), the unusually enlarged amygdala may instead represent functional adaptations associated with the processing of complex auditory information, in line with the highly specialized acoustic abilities of these animals.In primates, the amygdala-also referred to as the amygdaloid complex-is typically subdivided into cortical regions and thirteen interconnected nuclei. These nuclei, in turn, exhibit further subdivisions characterized by complex intranuclear and internuclear connections. This organization is defined based on cytoarchitectonic, histochemical, and neural connectivity criteria (Krettek & Price, 1978;Pitkänen & Amaral, 1991;de Gois Morais et al., 2021). Cytoarchitectonic descriptions of the amygdaloid complex mostly have emerged from studies in laboratory rodents, primates and humans, with preferential nomenclature usage from laboratory rodents. According to this classification, the amygdaloid complex consists of the amygdaloid body and the extended amygdala. The amygdaloid body is comprised of the basolateral group, the corticomedial or superficial group, the centromedial group, and other amygdaloid nuclei (this includes the intercalated cell masses/islands and the amygdalohippocampal nucleus) (Price, Russchen, & Amaral, 1987;McDonald, 1998;Imam et al., 2022). The dolphinidae amygdaloid complex, like other mammals, is comprised of twelve subnuclei forming three major groups namely, the basolateral complex (or deep nuclei), the cortical or superficial areas and the remaining areas (see details in Sacchini et al., 2024) The central nucleus of the amygdaloid complex is functionally important since it has previously been assigned a critical role in generating physiological and behavioural responses associated with negative emotions, such as fear and anxiety (Davis, 1997). This nucleus is rich in connectivity, particularly its extensive projections to autonomic and endocrine centers located in the brainstem and hypothalamus (Sorvari et al., 1996).In this context, the study by Sacchini et al. (2024) employed Nissl staining and calbindin-D28k immunohistochemistry to precisely investigate the neuroanatomy of the amygdaloid complex, with a specific focus on the central nucleus, in the brains of five dolphins from three different species belonging to the Delphinidae family.The study by Sacchini and colleagues represents the first classification of the amygdaloid complex in striped, common, and pantropical spotted dolphin species. All three Delphinidae species exhibited amygdaloid complexes that were neuroanatomically similar to those previously described. It is important to note that the central nucleus appears to have various subdivisions across some mammalian species. In the long-tailed macaque (Macaca fascicularis) and humans, the central nucleus has two subdivisions (Pitkänen and Amaral, 1993;Pitkänen & Kemppainen, 2002), while three subdivisions have been observed in the common marmoset (Callithrix jacchus) (Araújo de Góis Morais et al., 2019), and up to four have been described in the wistar rat (Rattus norvegicus) (Kemppainen & Pitkänen, 2000). Sacchini et al. (2024) The relevance of the work conducted by Sacchini and colleagues lies in the fact that a precise categorization of the amygdala, particularly its central nucleus, is indispensable for a clearer and more accurate understanding of one of the most complex functions expressed by vertebrates: emotions. Consequently, the description of the central nucleus morphology, boundaries, and cytoarchitecture may broaden the understanding of how the amygdala modulates emotional experience through its extensive connections with other brain areas.Studies from human patients with generalized anxiety disorder appear to exhibit extensive amygdala dysfunction within a wide range of involved networks, which can lead to abnormal emotional and cognitive processing (Du et al., 2021). Furthermore, studies point to structural and functional abnormalities in the amygdala associated with suicidal behaviour in patients with major depressive disorder (Wang et al., 2020). Thus, furthering the neuroanatomical and functional understanding of morphological amygdaloid variation could assist in understanding clinical presentation and management of amygdaloid dysfunction. It is clear form clinical presentations that amygdaloid dysfunction leads to pronounced behavioural changes. It is unclear how changes in amygdaloid anatomy may affect amygdaloid function. Perhaps one way to approach this is to broaden our comparative understanding of the amygdaloid complex and potentially infer changes in anatomical presentation and associated behaviour to those observed in clinical presentations.It is important to note that various neurotransmitters, such as serotonin (5hydroxytryptamine) and ɣ-aminobutyric acid (GABA) have previously been associated with these clinical conditions, described above. For example, medications that act by blocking the reuptake of serotonin -a first-line treatment for depression and anxietyhas been shown to negatively influence amygdala activation in response to emotional stimuli (Bigos et al., 2008;Murphy et al., 2009;Godlewska et al., 2012). Additionally, reduced GABA-eric inhibition of the basolateral amygdaloid nucleus has been associated with behavioural hyperexcitability, thus potentially increasing anxiety and depression levels, emotional dysregulation, and the development of seizure activity (Prager et al., 2016). In this regard, Salamanca et al. (2024) demonstrated in rats the co-existence of VIP-and GABA-ergic inhibitory neurons, suggesting that VIP-immunoreactive cells may modulate excitatory pyramidal neurons as well as other inhibitory populations in a regionspecific manner within the amygdaloid complex, providing an additional layer of inhibitory control relevant to emotional and cognitive processing.Therefore, considering the structural similarities between the amygdaloid complex of dolphins and primates, it is possible that both orders may share convergent amygdaloid neuroanatomical organization potentially related to emotional information processing, specifically regarding responses associated with fear and anxiety. To further explore whether such structural convergence is accompanied by comparable connectivity patterns, studies employing diffusion tensor imaging, such as the work of Graïc et al. (2023) in sheep, demonstrate that this approach can effectively map amygdaloid networks even in non-conventional species, highlighting its potential value for future investigations in cetaceans. However, this remains to be thoroughly explored in dolphins. Moreover, studies such as the one by Sacchini and colleagues, by providing precise morphological descriptions of the amygdaloid complex, can contribute to a more comprehensive understanding of the comparative neuroanatomy of the amygdala in mammals and its role in emotional processing, which, if functionally altered, could result in neurological diseases and psychiatric disorders.Finally, we duly respect the neuroanato
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DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.
- Titre Crossref
- Commentary: The amygdaloid body of the family Delphinidae: a morphological study of its central nucleus through calbindin-D28k
- Date Crossref
- 23/01/2026
- Éditeur
- Frontiers Media SA
- Type
- journal-article
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Où se fait cette recherche
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Universidade do Estado do Rio Grande do Norte pays non établi dans la noticeUniversité ou école supérieure
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University of Cape Town University of Cape Town, Afrique du Sud (code pays fourni par la source)Université ou école supérieure
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Faculty of Health Sciences Laboratory of Experimental Neurology University of Cape Town, Afrique du Sud (ville ou établissement reconnu, pays non nommé)Université ou école supérieure
Universidade do Estado do Rio Grande do Norte, University of Cape Town (University of Cape Town, Afrique du Sud) et Laboratory of Experimental Neurology — Faculty of Health Sciences (University of Cape Town, Afrique du Sud). Pays d’affiliation : Afrique du Sud.
Une affiliation ne permet pas de déduire la nationalité d’un auteur.