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1.
Proc Biol Sci ; 291(2024): 20240358, 2024 Jun.
Article En | MEDLINE | ID: mdl-38835281

Communication governs the formation and maintenance of social relationships. The interpretation of communication signals depends not only on the signal's content but also on a receiver's individual experience. Experiences throughout life may interact to affect behavioural plasticity, such that a lack of developmental sensory exposure could constrain adult learning, while salient adult social experiences could remedy developmental deficits. We investigated how experiences impact the formation and direction of female auditory preferences in the zebra finch. Zebra finches form long-lasting pair bonds and females learn preferences for their mate's vocalizations. We found that after 2 weeks of cohabitation with a male, females formed pair bonds and learned to prefer their partner's song regardless of whether they were reared with ('normally reared') or without ('song-naive') developmental exposure to song. In contrast, females that heard but did not physically interact with a male did not prefer his song. In addition, previous work has found that song-naive females do not show species-typical preferences for courtship song. We found that cohabitation with a male ameliorated this difference in preference. Thus, courtship and pair bonding, but not acoustic-only interactions, strongly influence preference learning regardless of rearing experience, and may dynamically drive auditory plasticity for recognition and preference.


Finches , Learning , Vocalization, Animal , Animals , Female , Male , Finches/physiology , Pair Bond , Social Behavior , Courtship
2.
Cell Rep ; 43(5): 114196, 2024 May 28.
Article En | MEDLINE | ID: mdl-38717902

Memory recall and guidance are essential for motor skill acquisition. Like humans learning to speak, male zebra finches learn to sing by first memorizing and then matching their vocalization to the tutor's song (TS) during specific developmental periods. Yet, the neuroanatomical substrate supporting auditory-memory-guided sensorimotor learning has remained elusive. Here, using a whole-brain connectome analysis with activity-dependent viral expression, we identified a transient projection into the motor region, HVC, from neuronal ensembles responding to TS in the auditory forebrain, the caudomedial nidopallium (NCM), in juveniles. Virally induced cell death of the juvenile, but not adult, TS-responsive NCM neurons impaired song learning. Moreover, isolation, which delays closure of the sensory, but not the motor, learning period, did not affect the decrease of projections into the HVC from the NCM TS-responsive neurons after the song learning period. Taken together, our results suggest that dynamic axonal pruning may regulate timely auditory-memory-guided vocal learning during development.


Finches , Learning , Vocalization, Animal , Animals , Vocalization, Animal/physiology , Finches/physiology , Learning/physiology , Male , Neurons/physiology , Connectome
3.
Physiol Behav ; 281: 114581, 2024 Jul 01.
Article En | MEDLINE | ID: mdl-38734358

Bird song is a crucial feature for mate choice and reproduction. Song can potentially communicate information related to the quality of the mate, through song complexity, structure or finer changes in syllable characteristics. It has been shown in zebra finches that those characteristics can be affected by various factors including motivation, hormone levels or extreme temperature. However, although the literature on zebra finch song is substantial, some factors have been neglected. In this paper, we recorded male zebra finches in two breeding contexts (before and after pairing) and in two ambient temperature conditions (stable and variable) to see how those factors could influence song production. We found strong differences between the two breeding contexts: compared to their song before pairing, males that were paired had lower song rate, syllable consistency, frequency and entropy, while surprisingly the amplitude of their syllables increased. Temperature variability had an impact on the extent of these differences, but did not directly affect the song parameters that we measured. Our results describe for the first time how breeding status and temperature variability can affect zebra finch song, and give some new insights into the subtleties of the acoustic communication of this model species.


Finches , Sexual Behavior, Animal , Temperature , Vocalization, Animal , Animals , Male , Finches/physiology , Vocalization, Animal/physiology , Sexual Behavior, Animal/physiology , Sound Spectrography , Female
4.
Commun Biol ; 7(1): 598, 2024 May 18.
Article En | MEDLINE | ID: mdl-38762691

Many songbirds learn to produce songs through vocal practice in early life and continue to sing daily throughout their lifetime. While it is well-known that adult songbirds sing as part of their mating rituals, the functions of singing behavior outside of reproductive contexts remain unclear. Here, we investigated this issue in adult male zebra finches by suppressing their daily singing for two weeks and examining the effects on song performance. We found that singing suppression decreased the pitch, amplitude, and duration of songs, and that those song features substantially recovered through subsequent free singing. These reversible song changes were not dependent on auditory feedback or the age of the birds, contrasting with the adult song plasticity that has been reported previously. These results demonstrate that adult song structure is not stable without daily singing, and suggest that adult songbirds maintain song performance by preventing song changes through physical act of daily singing throughout their life. Such daily singing likely functions as vocal training to maintain the song production system in optimal conditions for song performance in reproductive contexts, similar to how human singers and athletes practice daily to maintain their performance.


Feedback, Sensory , Finches , Vocalization, Animal , Animals , Vocalization, Animal/physiology , Male , Finches/physiology , Feedback, Sensory/physiology , Age Factors , Aging/physiology , Auditory Perception/physiology
5.
Philos Trans R Soc Lond B Biol Sci ; 379(1905): 20230191, 2024 Jul 08.
Article En | MEDLINE | ID: mdl-38768203

Acoustic signalling is crucial in affecting movements and in social interactions. In species with dynamic social structures, such as multi-level societies, acoustic signals can provide a key mechanism allowing individuals to identify and find or avoid each other and to exchange information. Yet, if the spacing between individuals regularly exceeds the maximum signalling range, the relation between movements and signals becomes more complex. As the best-studied songbird in captivity, the zebra finch (Taeniopygia castanotis) is a species with individually distinct songs that are audible over just a few metres and a widely ranging dynamic multi-level social organization in the wild, raising questions on the actual role of its song in social cohesion and coordination. Here, we provide an overview of birdsong in social organizations (networks) and use the ecology of the zebra finch and male song to discuss how singing can facilitate social cohesion and coordination in species where the signal range is very short. We raise the question of the extent to which zebra finches are a representative species to understand the function of song in communication, and we broaden current views on the function of birdsong and its individual signature. This article is part of the theme issue 'The power of sound: unravelling how acoustic communication shapes group dynamics'.


Finches , Social Behavior , Vocalization, Animal , Animals , Vocalization, Animal/physiology , Finches/physiology , Male , Female
6.
J Acoust Soc Am ; 155(4): 2803-2816, 2024 Apr 01.
Article En | MEDLINE | ID: mdl-38662608

Urban expansion has increased pollution, including both physical (e.g., exhaust, litter) and sensory (e.g., anthropogenic noise) components. Urban avian species tend to increase the frequency and/or amplitude of songs to reduce masking by low-frequency noise. Nevertheless, song propagation to the receiver can also be constrained by the environment. We know relatively little about how this propagation may be altered across species that (1) vary in song complexity and (2) inhabit areas along an urbanization gradient. We investigated differences in song amplitude, attenuation, and active space, or the maximum distance a receiver can detect a signal, in two human-commensal species: the house sparrow (Passer domesticus) and house finch (Haemorhous mexicanus). We described urbanization both discretely and quantitatively to investigate the habitat characteristics most responsible for propagation changes. We found mixed support for our hypothesis of urban-specific degradation of songs. Urban songs propagated with higher amplitude; however, urban song fidelity was species-specific and showed lowered active space for urban house finch songs. Taken together, our results suggest that urban environments may constrain the propagation of vocal signals in species-specific manners. Ultimately, this has implications for the ability of urban birds to communicate with potential mates or kin.


Finches , Species Specificity , Urbanization , Vocalization, Animal , Animals , Vocalization, Animal/physiology , Finches/physiology , Sparrows/physiology , Noise , Sound Spectrography , Ecosystem , Humans , Perceptual Masking/physiology , Male
7.
J Exp Biol ; 227(9)2024 Apr 15.
Article En | MEDLINE | ID: mdl-38634224

In many species of animals, red carotenoid-based coloration is produced by metabolizing yellow dietary pigments, and this red ornamentation can be an honest signal of individual quality. However, the physiological basis for associations between organism function and the metabolism of red ornamental carotenoids from yellow dietary carotenoids remains uncertain. A recent hypothesis posits that carotenoid metabolism depends on mitochondrial performance, with diminished red coloration resulting from altered mitochondrial aerobic respiration. To test for an association between mitochondrial respiration and red carotenoids, we held wild-caught, molting male house finches in either small bird cages or large flight cages to create environmental challenges during the period when red ornamental coloration is produced. We predicted that small cages would present a less favorable environment than large flight cages and that captivity itself would decrease both mitochondrial performance and the abundance of red carotenoids compared with free-living birds. We found that captive-held birds circulated fewer red carotenoids, showed increased mitochondrial respiratory rates, and had lower complex II respiratory control ratios - a metric associated with mitochondrial efficiency - compared with free-living birds, though we did not detect a difference in the effects of small cages versus large cages. Among captive individuals, the birds that circulated the highest concentrations of red carotenoids had the highest mitochondrial respiratory control ratio for complex II substrate. These data support the hypothesis that the metabolism of red carotenoid pigments is linked to mitochondrial aerobic respiration in the house finch, but the mechanisms for this association remain to be established.


Carotenoids , Finches , Mitochondria , Animals , Carotenoids/metabolism , Male , Finches/physiology , Finches/metabolism , Mitochondria/metabolism , Cell Respiration , Oxygen Consumption
8.
Science ; 384(6694): 380-382, 2024 Apr 26.
Article En | MEDLINE | ID: mdl-38662851

Long-term impact from prenatal noise exposure in birds should raise general concern.


Environmental Exposure , Finches , Noise, Transportation , Animals , Female , Finches/growth & development , Finches/physiology , Reproduction , Noise, Transportation/adverse effects
9.
J Neurophysiol ; 131(5): 950-963, 2024 May 01.
Article En | MEDLINE | ID: mdl-38629163

Rare disruptions of the transcription factor FOXP1 are implicated in a human neurodevelopmental disorder characterized by autism and/or intellectual disability with prominent problems in speech and language abilities. Avian orthologues of this transcription factor are evolutionarily conserved and highly expressed in specific regions of songbird brains, including areas associated with vocal production learning and auditory perception. Here, we investigated possible contributions of FoxP1 to song discrimination and auditory perception in juvenile and adult female zebra finches. They received lentiviral knockdowns of FoxP1 in one of two brain areas involved in auditory stimulus processing, HVC (proper name) or CMM (caudomedial mesopallium). Ninety-six females, distributed over different experimental and control groups were trained to discriminate between two stimulus songs in an operant Go/Nogo paradigm and subsequently tested with an array of stimuli. This made it possible to assess how well they recognized and categorized altered versions of training stimuli and whether localized FoxP1 knockdowns affected the role of different features during discrimination and categorization of song. Although FoxP1 expression was significantly reduced by the knockdowns, neither discrimination of the stimulus songs nor categorization of songs modified in pitch, sequential order of syllables or by reversed playback were affected. Subsequently, we analyzed the full dataset to assess the impact of the different stimulus manipulations for cue weighing in song discrimination. Our findings show that zebra finches rely on multiple parameters for song discrimination, but with relatively more prominent roles for spectral parameters and syllable sequencing as cues for song discrimination.NEW & NOTEWORTHY In humans, mutations of the transcription factor FoxP1 are implicated in speech and language problems. In songbirds, FoxP1 has been linked to male song learning and female preference strength. We found that FoxP1 knockdowns in female HVC and caudomedial mesopallium (CMM) did not alter song discrimination or categorization based on spectral and temporal information. However, this large dataset allowed to validate different cue weights for spectral over temporal information for song recognition.


Cues , Discrimination Learning , Finches , Forkhead Transcription Factors , Gene Knockdown Techniques , Vocalization, Animal , Animals , Finches/physiology , Forkhead Transcription Factors/genetics , Forkhead Transcription Factors/metabolism , Female , Discrimination Learning/physiology , Vocalization, Animal/physiology , Auditory Perception/physiology , Repressor Proteins/genetics , Repressor Proteins/metabolism , Acoustic Stimulation
10.
Nat Commun ; 15(1): 3419, 2024 Apr 24.
Article En | MEDLINE | ID: mdl-38658545

Songs constitute a complex system of vocal signals for inter-individual communication in songbirds. Here, we elucidate the flexibility which songbirds exhibit in the organizing and sequencing of syllables within their songs. Utilizing a newly devised song decoder for quasi-real-time annotation, we execute an operant conditioning paradigm, with rewards contingent upon specific syllable syntax. Our analysis reveals that birds possess the capacity to modify the contents of their songs, adjust the repetition length of particular syllables and employing specific motifs. Notably, birds altered their syllable sequence in a goal-directed manner to obtain rewards. We demonstrate that such modulation occurs within a distinct song segment, with adjustments made within 10 minutes after cue presentation. Additionally, we identify the involvement of the parietal-basal ganglia pathway in orchestrating these flexible modulations of syllable sequences. Our findings unveil an unappreciated aspect of songbird communication, drawing parallels with human speech.


Vocalization, Animal , Animals , Vocalization, Animal/physiology , Male , Conditioning, Operant/physiology , Finches/physiology , Goals , Basal Ganglia/physiology , Songbirds/physiology
11.
J Exp Biol ; 227(7)2024 Apr 01.
Article En | MEDLINE | ID: mdl-38563308

Vocalisations play a key role in the communication behaviour of many vertebrates. Vocal production requires extremely precise motor control, which is executed by superfast vocal muscles that can operate at cycle frequencies over 100 Hz and up to 250 Hz. The mechanical performance of these muscles has been quantified with isometric performance and the workloop technique, but owing to methodological limitations we lack a key muscle property characterising muscle performance, the force-velocity relationship. Here, we quantified the force-velocity relationship in zebra finch superfast syringeal muscles using the isovelocity technique and tested whether the maximal shortening velocity is different between males and females. We show that syringeal muscles exhibit high maximal shortening velocities of 25L0 s-1 at 30°C. Using Q10-based extrapolation, we estimate they can reach 37-42L0 s-1 on average at body temperature, exceeding other vocal and non-avian skeletal muscles. The increased speed does not adequately compensate for reduced force, which results in low power output. This further highlights the importance of high-frequency operation in these muscles. Furthermore, we show that isometric properties positively correlate with maximal shortening velocities. Although male and female muscles differ in isometric force development rates, maximal shortening velocity is not sex dependent. We also show that cyclical methods to measure force-length properties used in laryngeal studies give the same result as conventional stepwise methodologies, suggesting either approach is appropriate. We argue that vocal behaviour may be affected by the high thermal dependence of superfast vocal muscle performance.


Finches , Larynx , Animals , Female , Male , Muscle, Skeletal/physiology , Finches/physiology , Muscle Contraction/physiology
12.
Trends Neurosci ; 47(5): 322-323, 2024 May.
Article En | MEDLINE | ID: mdl-38664110

In a recent study, Shvedov and colleagues used live two-photon imaging in transgenic zebra finches to reveal migration patterns of neuroblasts through the complex environment of the postembryonic brain. This study highlights the value of ubiquitin C/green fluorescent protein (UBC-GFP) transgenic zebra finches in studying adult neurogenesis and advances our understanding of dispersed long-distance neuronal migration in the adult brain, shedding light on this understudied phenomenon.


Brain , Cell Movement , Neurogenesis , Neurons , Songbirds , Animals , Animals, Genetically Modified , Brain/physiology , Brain/cytology , Cell Movement/physiology , Finches/physiology , Neural Stem Cells/physiology , Neurogenesis/physiology , Neurons/physiology , Songbirds/physiology
13.
Nat Neurosci ; 27(6): 1176-1186, 2024 Jun.
Article En | MEDLINE | ID: mdl-38684893

Reliable execution of precise behaviors requires that brain circuits are resilient to variations in neuronal dynamics. Genetic perturbation of the majority of excitatory neurons in HVC, a brain region involved in song production, in adult songbirds with stereotypical songs triggered severe degradation of the song. The song fully recovered within 2 weeks, and substantial improvement occurred even when animals were prevented from singing during the recovery period, indicating that offline mechanisms enable recovery in an unsupervised manner. Song restoration was accompanied by increased excitatory synaptic input to neighboring, unmanipulated neurons in the same brain region. A model inspired by the behavioral and electrophysiological findings suggests that unsupervised single-cell and population-level homeostatic plasticity rules can support the functional restoration after large-scale disruption of networks that implement sequential dynamics. These observations suggest the existence of cellular and systems-level restorative mechanisms that ensure behavioral resilience.


Finches , Neuronal Plasticity , Neurons , Vocalization, Animal , Animals , Vocalization, Animal/physiology , Neurons/physiology , Neuronal Plasticity/physiology , Finches/physiology , Male , Learning/physiology
14.
eNeuro ; 11(3)2024 Mar.
Article En | MEDLINE | ID: mdl-38467426

Auditory perception can be significantly disrupted by noise. To discriminate sounds from noise, auditory scene analysis (ASA) extracts the functionally relevant sounds from acoustic input. The zebra finch communicates in noisy environments. Neurons in their secondary auditory pallial cortex (caudomedial nidopallium, NCM) can encode song from background chorus, or scenes, and this capacity may aid behavioral ASA. Furthermore, song processing is modulated by the rapid synthesis of neuroestrogens when hearing conspecific song. To examine whether neuroestrogens support neural and behavioral ASA in both sexes, we retrodialyzed fadrozole (aromatase inhibitor, FAD) and recorded in vivo awake extracellular NCM responses to songs and scenes. We found that FAD affected neural encoding of songs by decreasing responsiveness and timing reliability in inhibitory (narrow-spiking), but not in excitatory (broad-spiking) neurons. Congruently, FAD decreased neural encoding of songs in scenes for both cell types, particularly in females. Behaviorally, we trained birds using operant conditioning and tested their ability to detect songs in scenes after administering FAD orally or injected bilaterally into NCM. Oral FAD increased response bias and decreased correct rejections in females, but not in males. FAD in NCM did not affect performance. Thus, FAD in the NCM impaired neuronal ASA but that did not lead to behavioral disruption suggesting the existence of resilience or compensatory responses. Moreover, impaired performance after systemic FAD suggests involvement of other aromatase-rich networks outside the auditory pathway in ASA. This work highlights how transient estrogen synthesis disruption can modulate higher-order processing in an animal model of vocal communication.


Auditory Cortex , Finches , Female , Animals , Male , Finches/physiology , Aromatase , Reproducibility of Results , Vocalization, Animal/physiology , Acoustic Stimulation , Auditory Pathways/physiology , Auditory Perception/physiology , Auditory Cortex/physiology
15.
Nature ; 628(8006): 117-121, 2024 Apr.
Article En | MEDLINE | ID: mdl-38509376

Vocal learning in songbirds is thought to have evolved through sexual selection, with female preference driving males to develop large and varied song repertoires1-3. However, many songbird species learn only a single song in their lifetime4. How sexual selection drives the evolution of single-song repertoires is not known. Here, by applying dimensionality-reduction techniques to the singing behaviour of zebra finches (Taeniopygia guttata), we show that syllable spread in low-dimensional feature space explains how single songs function as honest indicators of fitness. We find that this Gestalt measure of behaviour captures the spectrotemporal distinctiveness of song syllables in zebra finches; that females strongly prefer songs that occupy more latent space; and that matching path lengths in low-dimensional space is difficult for young males. Our findings clarify how simple vocal repertoires may have evolved in songbirds and indicate divergent strategies for how sexual selection can shape vocal learning.


Finches , Learning , Mating Preference, Animal , Vocalization, Animal , Animals , Female , Male , Courtship , Finches/physiology , Learning/physiology , Vocalization, Animal/physiology , Mating Preference, Animal/physiology
16.
Horm Behav ; 162: 105508, 2024 Jun.
Article En | MEDLINE | ID: mdl-38513527

Social environments modulate endocrine function, yet it is unclear whether individuals can become like their social partners in how they physiologically respond to stressors. This social transmission of hypothalamic-pituitary-adrenal (HPA) axis reactivity could have long-term consequences for health and lifespan of individuals if their social partners react to stressors with an exaggerated HPA axis response. We tested whether glucocorticoid levels in response to stress of breeding partners changes after breeding depending on whether partners had similar or dissimilar postnatal conditions. We manipulated postnatal conditions by mimicking early life stress in zebra finch chicks (Taeniopygia guttata) via postnatal corticosterone exposure. When they reached adulthood, we created breeding pairs where the female and male had experienced either the same or different early life hormonal treatment (corticosterone or control). Before and after breeding, we obtained blood samples within 3 min and after 10 min or 30 min of restraint stress (baseline, cort10, cort30). We found that corticosterone levels of individuals in response to restraint were affected by their own and their partner's early life conditions, but did not change after breeding. However, across all pairs, partners became more similar in cort30 levels after breeding, although differences between partners in cort10 remained greater in pairs with a corticosterone-treated female. Thus, we show that HPA axis response to stressors in adulthood can be modulated by reproductive partners and that similarity between partners is reduced when females are postnatally exposed to elevated glucocorticoids.


Corticosterone , Finches , Hypothalamo-Hypophyseal System , Pituitary-Adrenal System , Stress, Psychological , Animals , Hypothalamo-Hypophyseal System/physiology , Hypothalamo-Hypophyseal System/metabolism , Female , Pituitary-Adrenal System/physiology , Pituitary-Adrenal System/metabolism , Male , Corticosterone/blood , Stress, Psychological/metabolism , Stress, Psychological/blood , Finches/physiology , Reproduction/physiology , Restraint, Physical/physiology
17.
Comp Med ; 74(2): 115-120, 2024 Apr 01.
Article En | MEDLINE | ID: mdl-38508695

The zebra finch (Taeniopygia castanotis) is a songbird sold in the pet trade and commonly used in research. In this report, we describe a set of partially overlapping traits shared by 3 birds in 2 broods from the same nest box that included atypical morphologic, developmental, and behavioral characteristics. The most obvious feature of this novel phenotype was feathers exhibiting a clumped appearance, which was accompanied by slow growth, delayed expression of adult plumage traits, and tameness, which we define as a lack of escape response upon handling without behavioral indicators of stress such as rapid breathing. Surprisingly, these birds also displayed a fatal response to nonhuman stressors. In one brood, a male expressed all of these characteristics, 2 females were wild-type, and a male sibling expressed only a hyperactive stress response but was otherwise normal. This indicates that the stress response could be inherited independently of the other abnormalities found in the male nest mate. In a second brood, a male bearing the abnormal feather phenotype behaved similarly to the male in the first brood, supporting the possibility that tameness is genetically associated with the unusual feather phenotype. The 2 other male and 2 female nest mates from this brood were behaviorally and visually normal, although the females developed slowly. Although similar traits have appeared in the aviary previously, such as slow development and small size, these are the first cases documented in detail. This correlated suite of traits suggests a linkage among altered feather growth, developmental rate, and brain and/or physiologic traits influencing normal fear and stress responses in the zebra finch. Awareness and study of the mechanism(s) linking these traits by examination of underlying genetic or environmental factors will allow a better understanding of the relationship between physical and behavioral traits in domesticated laboratory animals.


Feathers , Finches , Phenotype , Animals , Male , Female , Finches/physiology , Finches/genetics , Stress, Physiological , Humans , Behavior, Animal
18.
Sci Rep ; 14(1): 5781, 2024 03 09.
Article En | MEDLINE | ID: mdl-38461197

Juvenile male zebra finches (Taeniopygia guttata) must be exposed to an adult tutor during a sensitive period to develop normal adult song. The pre-motor nucleus HVC (acronym used as a proper name), plays a critical role in song learning and production (cf. Broca's area in humans). In the human brain, left-side hemispheric dominance in some language regions is positively correlated with proficiency in linguistic skills. However, it is unclear whether this pattern depends upon language learning, develops with normal maturation of the brain, or is the result of pre-existing functional asymmetries. In juvenile zebra finches, even though both left and right HVC contribute to song production, baseline molecular activity in HVC is left-dominant. To test if HVC exhibits hemispheric dominance prior to song learning, we raised juvenile males in isolation from adult song and measured neuronal activity in the left and right HVC upon first exposure to an auditory stimulus. Activity in the HVC was measured using the immediate early gene (IEG) zenk (acronym for zif-268, egr-1, NGFI-a, and krox-24) as a marker for neuronal activity. We found that neuronal activity in the HVC of juvenile male zebra finches is not lateralized when raised in the absence of adult song, while normally-reared juvenile birds are left-dominant. These findings show that there is no pre-existing asymmetry in the HVC prior to song exposure, suggesting that lateralization of the song system depends on learning through early exposure to adult song and subsequent song-imitation practice.


Finches , Animals , Male , Humans , Finches/physiology , Vocalization, Animal/physiology , Learning/physiology , Brain/physiology , Genes, Immediate-Early
19.
J Exp Zool A Ecol Integr Physiol ; 341(4): 440-449, 2024 05.
Article En | MEDLINE | ID: mdl-38385786

The development of inexpensive and portable point-of-care devices for measuring nutritional physiological parameters from blood (e.g., glucose, ketones) has accelerated our understanding and assessment of real-time variation in human health, but these have infrequently been tested or implemented in wild animals, especially in relation to other key biological or fitness-related traits. Here we used point-of-care devices to measure blood levels of glucose, ketones, uric acid, and triglycerides in free-ranging house finches (Haemorhous mexicanus)-a common songbird in North America that has been well-studied in the context of urbanization, nutrition, health, and sexual selection-during winter and examined (1) repeatability of these methods for evaluating blood levels in these wild passerines, (2) intercorrelations among these measurements within individuals, (3) how blood nutritional-physiology metrics related to a bird's body condition, habitat of origin (urban vs. suburban), poxvirus infection, and sex; and (4) if the expression of male sexually selected plumage coloration was linked to any of the nutritional-physiological metrics. All blood-nutritional parameters were repeatable. Also, there was significant positive covariation between concentrations of circulating triglycerides and glucose and triglycerides and uric acid. Urban finches had higher blood glucose concentrations than suburban finches, and pox-infected individuals had lower blood triglyceride concentrations than uninfected ones. Last, redder males had higher blood glucose, but lower uric acid levels. These results demonstrate that point-of-care devices can be useful, inexpensive ways of measuring real-time variation in the nutritional physiology of wild birds.


Finches , Passeriformes , Poxviridae Infections , Humans , Male , Animals , Finches/physiology , Urbanization , Uric Acid/metabolism , Blood Glucose , Point-of-Care Systems , Animals, Wild , Ecosystem , Nutritional Physiological Phenomena , Ketones/metabolism , Triglycerides
20.
Neuroendocrinology ; 114(6): 538-552, 2024.
Article En | MEDLINE | ID: mdl-38262383

INTRODUCTION: This study sought to decipher the mechanism of transitions between life-history stages in a seasonally reproducing subtropical finch, Amandava amandava delineating the plasticity of the gonadotropes (LH cells), lactotropes (PRL cells), and thyrotropes (TSH cells) in the pituitary gland including the pars tuberalis, with regard to the in situ expression, morphological characteristics, and alteration in the plasma levels of hormones. METHODS: Immunohistochemistry of LH, PRL, TSH cells, morphometry and densitometry of expressed hormones (Image J software analysis), and ELISA for plasma hormonal levels were performed. RESULTS: LH, PRL, and TSH cells showed remarkable plasticity during the annual seasonal reproductive cycle. In the PT, all the 3 cell types were detected during the breeding phase, with additional detection of the TSH immunoreactivity during the pre-breeding and the PRL immunoreactivity during post-breeding phases. Pars distalis (PD) expressions and the plasma levels of the LH and TSH were at the peak during the breeding phase, but the PRL peak was during the post-breeding phase. In addition to PRL in the neurohypophysis and in the median eminence, hypothalamic PRL, and TSH were also elucidated. CONCLUSIONS: This study suggests activation of the gonadal axis by the PT TSH which might transduce seasonal cues, but not specifically photoperiod, in the birds of the tropics/subtropics. Post-breeding phase sustained high plasma TSH and peak plasma PRL might coordinate the transition to the non-breeding phase including the trigger of parental care as the later hormone assigned with. Hypothalamic TSH and PRL might influence events of seasonality through central modulation.


Finches , Gonadotrophs , Luteinizing Hormone , Prolactin , Reproduction , Seasons , Thyrotropin , Animals , Reproduction/physiology , Luteinizing Hormone/blood , Luteinizing Hormone/metabolism , Gonadotrophs/metabolism , Gonadotrophs/physiology , Prolactin/blood , Prolactin/metabolism , Finches/physiology , Thyrotropin/blood , Thyrotropin/metabolism , Lactotrophs/metabolism , Lactotrophs/physiology , Male , Pituitary Gland, Anterior/metabolism , Female , Thyrotrophs/metabolism , Thyrotrophs/physiology
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