Climate change and human activities are widely recognized as major drivers of global biodiversity loss. The Brown Eared Pheasant (Crossoptilon mantchuricum), a ground-dwelling avian species unique to China, is confined to a highly fragmented range and faces persistent long-term threats. To devise robust and site-specific preservation strategies, it is imperative to elucidate the species’ sensitivity to climate change and pinpoint high-priority protection areas. In this study, we integrated field surveys, ensemble species distribution modelling, Marxan systematic conservation planning, and GAP analysis to assess habitat suitability changes under future climate scenarios and identify conservation gaps for the Brown Eared Pheasant. Our results demonstrate that the species’ distribution is primarily driven by annual temperature range, precipitation in the coldest and wettest quarters, and elevation, underscoring its highly restricted climatic niche. Based on current climatic conditions, highly suitable habitats are primarily distributed across specific mountainous regions: Hebei Province (Xiaowutai Mountains), Shanxi Province (the Taihang, Lvliang, and Taiyue mountain systems), Shaanxi Province (Huanglong Mountains), and northwestern Beijing (the Donglingshan area). Simulations conducted across prospective climatic scenarios suggest a continued decline in suitable habitat, which becomes increasingly restricted to higher latitudes and mountainous regions. According to our GAP analysis, current protected area networks fail to encompass 72.27% of the priority conservation zones identified, with significant gaps in the southern Lvliang, Taiyue, and Huanglong Mountains. The outcomes of this research establish a robust empirical foundation with which to inform prospective preservation strategies and habitat stewardship for the Brown Eared Pheasant.
Mountain ecosystems serve as natural laboratories for studying biodiversity distribution along elevational gradients. This study was conducted at Hualongshan National Nature Reserve in the Daba Mountains, Shaanxi Province, using line transect surveys, mist-netting, and passive acoustic monitoring (PAM). We systematically examined the spatial variation and drivers of bird community diversity along the elevational gradient, integrating α and β diversity across taxonomic, functional, and phylogenetic dimensions. A total of 91 bird species from 8 orders and 33 families were recorded, among which breeding birds (84 species) were dominated by Oriental (55.95%) and Palaearctic (26.19%) species, reflecting significant transitional characteristics between the two realms. Alpha diversity exhibited a mid-elevation unimodal pattern, peaking at 1951~2250 m in the coniferous and broad-leaved mixed forest zone. β diversity decomposition revealed that taxonomic diversity was dominated by turnover, functional diversity by nestedness, and phylogenetic diversity by balanced contributions of both, indicating asynchrony among dimensions. Random forest models identified precipitation difference as the primary driver of taxonomic β diversity, while Enhanced Vegetation Index (EVI) difference dominated functional β diversity, revealing differentiated mechanisms by which water availability and vegetation productivity shape species composition and functional structure, respectively. Our findings highlight the asynchrony of multidimensional bird diversity, emphasizing that a single dimension cannot fully capture community assembly mechanisms, and provide theoretical and practical reference for mountain biodiversity conservation.
Understanding the response of species to past climate change provides great opportunities to know their adaptive capacity for resilience under future climate change. Since the Late Pleistocene, dramatic climate fluctuations have significantly impacted the distribution of giant pandas (Ailuropoda melanoleuca). However, how the spatial distribution and climatic niche of giant pandas shifted in response to past climate change remain poorly understood. Based on the known distribution records (fossil and present day) and the most updated climate projections for the Last Interglacial (LIG; ~120 ka), Last Glacial Maximum (LGM; ~22 ka), Mid-Holocene (MH; ~6 ka), and the present day, we predicted and compared the distribution and climatic niche of giant pandas. The results show that giant pandas have undergone a considerable range contraction (a 28.27% reduction) followed by a marked range expansion (a 75.8% increase) during the LIG–LGM–MH period, while its climatic niche remained relatively stable. However, from the MH to the current, both the distribution area and climatic niche of giant pandas have undergone significant changes. Our findings suggest that the giant panda may adjust its distribution to track stable climatic niches in response to future climate change. Future conservation planning should designate accessible areas for giant pandas and adjust priority conservation areas as needed.
The globin superfamily, central to oxygen (O2) cascade dynamics, exemplifies how canalization—evolutionary stabilization of phenotypic traits—enables vertebrates to thrive in extreme environments. In birds, hemoglobins (Hbs) serve as a paradigm of this process, with structural and functional canalization underpinning their exceptional aerobic capacity and elevational diversification. Despite significant advances of globins in our understanding of avian aerobic adaptation, a comprehensive synthesis of functional diversity, molecular evolution, and structural innovation is essential to fully elucidate their canalized roles in O2 homeostasis. Integrating perspectives on globin functional diversity and structural evolution, this review examines how chance (mutation/fixation biases) and contingency (historical genetic/epistatic constraints) shape Hb divergence and parallelism, thereby bridging molecular mechanisms with physiological adaptation in birds. We highlight how avian Hbs, canalized through compensatory substitutions and allosteric regulation, achieves a balance between evolutionary robustness and adaptive plasticity. However, critical gaps remain persist: the roles of understudied globins (e.g., neuroglobin, globin E) and the mechanisms of genetic assimilation in migratory taxa. We propose an integrative framework that incorporates ecological divergence (elevation, flight endurance), phylogenetic timescales, and systems biology to unravel how canalization directs adaptive compromise. By focusing on birds within the amniotes, this synthesis advances a cohesive model for vertebrate evolution, wherein canalized globins reconcile metabolic precision with ecological innovation. Ultimately, this review refines hypotheses of O2 cascade evolution and calls for cross-disciplinary studies to decode the genetic and physiological architecture underlying adaptive canalization in extreme environments.
Metapopulation theory explains species persistence through dispersal-linked populations. This study links theory and conservation to predict reintroduction success in human-altered landscapes. Using the Crested Ibis (Nipponia nippon) as a model system, we combined spatially explicit habitat modeling with stochastic population viability analysis to assess how dispersal mediates persistence across wild and reintroduced populations in a metapopulation context. Our integrated approach identified 15,216 km² of potential habitat and a 95.64 km least-cost pathway linking wild population and reintroduced population. Projections over 50-year simulations revealed that dispersal significantly enhanced metapopulation viability, enabling population size to reach 17,846 individuals (92.37 % of carrying capacity). Conversely, population isolation would lead to a 15% decline in reintroduced population. Our simulations demonstrated that environmental stressors (including catastrophic events and predation pressure) reduced overall metapopulation size by 61.8% and 22.7% respectively when dispersal was absent. However, active dispersal effectively mitigated these impacts, maintaining long-term quasi-extinction probabilities at 0.17. The analysis revealed a clear source-sink dynamic, with the wild population serving as a stable source population, while the reintroduced population remained dependent on metapopulation connectivity for persistence.
Evaluating the adaptive capacity of species to past climate change is a crucial component in understanding how species respond to climatic shifts. This information serves as a vital foundation for guiding conservation practices under future environmental changes. We reconstructed the potential suitable habitat maps for giant pandas (Ailuropoda melanoleuca) during the Last Glacial Maximum (LGM, similar to 22 ka) and mid-Holocene (MH, similar to 6 ka) climates via an ensemble species distribution modelling approach, and compared them to the potential suitable habitats at current stage, we also estimated and compared the bioclimatic velocity of giant pandas to the climatic velocities since LGM. The results showed that the suitable habitat area for giant pandas has increased by 12.47 % from LGM to MH, and then decreased by 5.37 % from MH to current stage. The estimated climatic velocity over the suitable habitats for giant pandas was 16.00 +/- 5.83 km center dot kyr(-1) from LGM to MH and 46.13 +/- 18.96 km center dot kyr(-1) from MH to nowadays. The bioclimatic velocities for these two periods were 0.55 +/- 0.55 km center dot kyr(-1) and 8.47 +/- 10.45 km center dot kyr(-1), respectively. The result indicated that giant pandas have successfully adapted to the climate changes since LGM by migrating at a rate that lags behind the speed of climate change within their current distribution range. However, this does not imply that giant pandas possess sufficient migratory capabilities to cope with future climate crises, as the current rate of climate change exceeds that of any historical periods.
Nest -site selection plays a crucial role in reproductive success and survival of birds, particularly for territorial birds. Therefore, it is important to understand how birds identify and select their nesting sites. The Amur Paradise Flycatcher (Terpsiphone incei) is a medium-sized species of the Monarchidae family with dichromatism in males. To investigate the differences in nest -site utilization strategies between different male morphs and identify the nest -site variables that influence the nest success of the species, we conducted a study on nest -site selection and nest success during the breeding seasons of 2020 to 2022 in Yangxian County, Shaanxi Province, China. During our study, we recorded a total of 98 nests and found that the Amur Paradise Flycatcher preferred nesting in forests with lower illumination, specifically on cedrela trees, and exclusively near residential areas. Interestingly, we did not find any significant difference both in nest -site selection and nesting success between the two male morphs. The overall nesting success was 51.06% (n = 94), with nest predation being the primary cause of nest failure. Our principal component analysis identified several significant factors affecting nest -site selection, including nest tree factors (14.168%), interference factors (13.145%), nest concealment factors (10.87%), terrain factors (10.262%), altitude factors (10.046%), and stability factors (8.438%). Furthermore, the results of binary logistic regression analysis indicated that successful breeding nests were located closer to the forest edge, had a sunnier aspect, and a smaller slope compared to failed nests. Similarly, the multiple linear regression analysis showed that slope, aspect, and nest tree species had significant effects on breeding success. Our findings suggest that the Amur Paradise Flycatcher seeks a balance between nest concealment and a view of the surroundings. The lack of a significant difference in reproductive outcomes between the two male morphs could potentially be attributed to the greater experience of white morph individuals, which may help mitigate the higher risk with their more attractive plumage for predators. Understanding the factors affecting nest -site selection and nest success is crucial for conservation efforts aimed at protecting this fascinating species and ensuring its long-term survival.
Understory bird communities, especially those comprising insectivores, are highly sensitive to forest loss and fragmentation. Currently, there is little knowledge regarding the large-scale diversity patterns of understory bird communities, particularly in Eastern Asia. Consequently, we aimed to identify the distribution patterns of understory birds in southern China and the factors underlying these patterns. We analysed the diversity distribution patterns of taxonomic and functional alpha and beta diversity for understory Passeriformes birds in southern China utilising cluster and ordination analyses. Subsequently, we analysed the effects of geographic distance, annual mean temperature, annual temperature range, annual mean precipitation, and annual precipitation range on diversity distribution patterns. In total, 9282 individuals belonging to 11 orders, 48 families, and 297 species were captured over 98,544 net hours, with Alcippeidae being the most abundant family in southern China. The understory bird communities of the 25 sites were categorised into six sub-regions of the Oriental Realm (Indo-Malayan Realm). The pattern in the distribution of taxonomic and functional beta-diversity of understory birds in southern China was consistent with zoogeographical regionalisation. Three distinct geographical groups were identified: Group 1 was located in the Min-Guang Coast and Hainan sub-regions; Group 2 was located in the East Hilly Plain, Southwest Mountains, and Western Mountains and Plateaus sub-regions; and Group 3 was located in the Southern Yunnan Mountain subregion. The most critical factors related to the distribution patterns of beta-diversity were geographical distance, annual mean temperature, and annual temperature range. Our results showed that the understory bird communities of the Southwest Mountain, East Hilly Plain, and Western Mountains, and Plateaus sub-regions were similar, as were those of the Min-Guang Coast and Hainan sub-regions. Our results underscore the joint roles of distance, temperature, and historical evolution in understory bird communities.
Climate and land use/land cover (LULC) changes have far-reaching effects on various biological processes in wildlife, particularly interspecific interactions. Unfortunately, interspecific interactions are often overlooked when assessing the impacts of environmental changes on endangered species. In this study, we examined niche similarities and habitat overlaps between wild Crested Ibis and sympatric Egret and Heron species (EHs) in Shaanxi, China, using Ecological niche models (ENMs). We aimed to forecast potential alterations in habitat overlaps due to climate and LULC changes. The results showed that although EHs possess a broader niche breadth compared to the Crested Ibis, they still share certain niche similarities, as indicated by Schoener’s D and Hellinger’s I values exceeding 0.5, respectively. Notably, despite varying degrees of habitat reduction, the shared habitat area of all six species expands with the changes in climate and LULC. We suggest that with the climate and LULC changes, the habitats of sympatric EHs are likely to suffer varying degrees of destruction, forcing them to seek refuge and migrate to the remaining wild Ibis habitat. This is primarily due to the effective conservation efforts in the Crested Ibis habitat in Yangxian County and neighboring areas. Consequently, due to the niche similarity, they will share and compete for limited habitat resources, including food and space. Therefore, we recommend that conservation efforts extend beyond protecting the Crested Ibis habitat. It is crucial to control human activities that contribute to LULC changes to safeguard the habitats of both Crested Ibis and other sympatric birds.
Bird sex chromosomes play a unique role in sex-determination, and affect the sexual morphology and behavior of bird species. Core waterbirds, a major clade of birds, share the common characteristics of being sexually monomorphic and having lower levels of inter-sexual conflict, yet their sex chromosome evolution remains poorly understood. Here, by we analyse of a chromosome-level assembly of a female crested ibis (Nipponia nippon), a typical core waterbird. We identify neo-sex chromosomes resulting from fusion of microchromosomes with ancient sex chromosomes. These fusion events likely occurred following the divergence of Threskiornithidae and Ardeidae. The neo-W chromosome of the crested ibis exhibits the characteristics of slow degradation, which is reflected in its retention of abundant gametologous genes. Neo-W chromosome genes display an apparent ovary-biased gene expression, which is largely driven by genes that are retained on the crested ibis W chromosome but lost in other bird species. These results provide new insights into the evolutionary history and expression patterns for the sex chromosomes of bird species.
The utilization of energy hubs (EHs) in the power system and simultaneous energy management of several energy networks is of high importance to increase energy efficiency. Therefore, this paper focuses on the energy management of grid-connected flexible energy hubs. Scheme includes electrical and heating networks, where renewables and storage devices are in connection using the hub as a coordinator. Problem minimizes the expected operating cost of the mentioned networks subject to networks optimal power flow model and the mathematical representation of flexible EHs. Uncertainties related to the amount of demand, price of electrical and heating energy, and renewable power have also been considered in the problem formulation. The unscented transformation method has been adopted to reduce the volume of the problem to obtain the optimal solution in low computation time, along with the precise modeling of flexibility and modeling of the aforementioned uncertainties. Modeling the flexibility of EHs in the presence of renewable sources, modeling bio-waste energy unit for the simultaneous generation of electric and heat energy, and modeling the various uncertainties of load using the unscented transformation are among the contributions of the paper. The obtained numerical results demonstrate the capability of the proposed scheme in improving the economic and operating status of electrical and heating networks, along with improving the flexibility of EHs in such a way that energy storages in renewable hubs can extract 100% flexibility conditions. In these conditions, the hubs are able to reduce energy costs, energy losses, voltage drop, and temperature by about 25%, 24%, 60%, and 59%, respectively, compared with the power flow studies of the networks under study. Also, based on sensitivity analysis results, the increase in load and energy price leads to an increase in the operating cost of the networks, while the increase in the size of renewable resources and storage devices reduces the networks’ energy cost.
Habitats of large herbivores have shrunk owing to the expansion of human activities. Consequently, wild herbivores frequently venture into adjacent farmlands to forage for crops. As a result, farmers use fences to prevent these herbivores from foraging. A dynamic game exists between whether farmers choose to set up fences and whether herbivores choose to venture into farmlands. This study established an evolutionary game model between farmers and herbivorous species. The effects of different factors on the game process were studied using model simulations to provide theoretical guidance for the conservation and management of herbivore species. Model simulations showed that food resources in herbivore habitats are key to protecting their populations. Therefore, management needs to restore and protect herbivore habitats, and in cases of extreme food shortages, herbivores should be artificially fed. Simultaneously, herbivores need to obtain certain food supplements from outside their habitats when food resources are scarce. Therefore, subsidies should be provided to farmers close to herbivore habitats to encourage them to use fences that allow a certain number of herbivores to pass through. In addition, increasing the buffer zone between herbivore habitats and farmland has positive implications for the conservation of large herbivore populations.
Species distribution models (SDMs) are effective tools for wildlife conservation and management, as they employ the quantification of habitat suitability and environmental niches to evaluate the patterns of species distribution. The utilization of SDMs at various scales in a hierarchical approach can provide additional and complementary information, significantly improving decision-making in local wildlife conservation initiatives. In this study, we considered the appropriate spatial scale and data resolution to execute species distribution modeling, as these factors greatly influence the modeling procedures. We developed SDMs for wintering black storks at both the regional and local scales. At the regional scale, we used climatic and climate-driven land use/land cover (LULC) variables, along with wintering occurrence points, to develop models for mainland China. At the local scale, we used local environmental variables and locally gathered wintering site data to develop models for Shaanxi province. The predictions from both the regional and local models were then combined at the provincial level by overlapping suitable areas based on climatic and local conditions. We compared and evaluated the resulting predictions using seven statistical metrics. The national models provide information on the appropriate climatic conditions for the black stork during the wintering period throughout China, while the provincial SDMs capture the important local ecological factors that influence the suitability of habitats at a finer scale. As anticipated, the national SDMs predict a larger extent of suitable areas compared to the provincial SDMs. The hierarchical prediction approach is considered trustworthy and, on average, yields better outcomes than non-hierarchical methods. Our findings indicate that human-driven LULC changes have a significant and immediate impact on the wintering habitat of the black stork. However, the effects of climate change seem to be reducing the severity of this impact. The majority of suitable wintering habitats lie outside the boundaries of protected areas, highlighting the need for future conservation and management efforts to prioritize addressing these conservation gaps and focusing on the protection of climate refuges.
Climate change has triggered a series of global-scale environmental problems, posing a great threat to the sustainable development of forests throughout the world. Bashania fargesii is the primary bamboo species consumed by giant pandas (Ailuropoda melanoleuca) in the Qinling Mountains. As global warming continues to intensify, how the distribution of B. fargesii changes will determine the survival of giant pandas in the future. We therefore predicted and compared the potential distribution of B. fargesii in the Qinling Mountains of Shaanxi Province in the 2050 s and 2070 s by using integrated Species distribution models (SDMs) constructed based on 88 occurrence records of B. fargesii and 12 selected environmental variables. The results showed that precipitation seasonality was the key environmental variable affecting the distribution of B. fargesii, and the suitable areas for B. fargesii would be lost under future climate scenarios. More importantly, under RCP8.5, habitat loss would be extremely dramatic in the 2070 s for B. fargesii. Our study indicated that climate change might have significant impacts on the future distribution of the bamboo B. fargesii, resulting in giant pandas lacking sufficient suitable habitats in the winter season. Routine monitoring of bamboo forests is necessary to strengthen the preservation of giant pandas and biodiversity in the Qinling Mountains.
Background High-quality genome data of birds play a significant role in the systematic study of their origin and adaptive evolution. The Temminck’s tragopan ( Tragopan temminckii ) (Galliformes, Phasianidae), a larger pheasant, is one of the most abundant and widely distributed species of the genus Tragopan, and was defined as class II of the list of national key protected wild animals in China. The absence of a sequenced genome has restricted previous evolutionary trait studies of this taxa. Results The whole genome of the Temminck’s tragopan was sequenced using Illumina and PacBio platform, and then de novo assembled and annotated. The genome size was 1.06 Gb, with a contig N50 of 4.17 Mb. A total of 117.22 Mb (11.00%) repeat sequences were identified. 16,414 genes were predicted using three methods, with 16,099 (98.08%) annotated as functional genes based on five databases. In addition, comparative genome analyses were conducted across 12 Galliformes species. The results indicated that T. temminckii was the first species to branch off from the clade containing Lophura nycthemera , Phasianus colchicus , Chrysolophus pictus , Syrmaticus mikado , Perdix hodgsoniae , and Meleagris gallopavo , with a corresponding divergence time of 31.43 million years ago (MYA). Expanded gene families associated with immune response and energy metabolism were identified. Genes and pathways associated with plumage color and feather development, immune response, and energy metabolism were found in the list of positively selected genes (PSGs). Conclusions A genome draft of the Temminck’s tragopan was reported, genome feature and comparative genome analysis were described, and genes and pathways related to plumage color and feather development, immune response, and energy metabolism were identified. The genomic data of the Temminck’s tragopan considerably contribute to the genome evolution and phylogeny of the genus Tragopan and the whole Galliformes species underlying ecological adaptation strategies.
Apiculture has been greatly developed in recent years in China. Beekeeping cooperatives and honey manufacturing enterprises have increased rapidly. As a result, a variety of honey products have entered the market, adding vitality to the food economy; however, the adulteration of honey products is on the rise in China. Previous attempts to control the adulteration of honey products mostly relied on technical, product-specific measures, and there was a lack of modeling research to guide the supervision of the honey product industry. In order to help local governments to better control the adulteration of honey products from a management perspective, this paper establishes an evolutionary game model composed of beekeeping cooperatives, honey product enterprises, and local governments. Through stability analysis and model simulation, we found that local government subsidies to cooperatives have little impact on the game system. Local government penalties to cooperatives and price adjustments of unadulterated raw honey by cooperatives are effective management tools to reduce the adulteration behavior of cooperatives. Local government penalties for enterprises are an effective management tool to reduce the adulteration behavior of enterprises. This research provides useful information for government agencies to design appropriate policies/business modes so as to promote sustainability and the healthy development of the honey product industry in China.
Predation is one of the most important extrinsic factors acting upon animal populations and is a strong selective force in the evolution of form and function. Understanding the impact of predation on bird population dynamics is crucial for understanding the predation pressure of bird populations and implementing conservation strategies, especially for threatened or endemic bird species. In this paper, we sorted the predation events in the wild Crested Ibis population in Yangxian County, Shaanxi Province, from 1981 to 2021 and in the reintroduced Crested Ibis population in Ningshan from 2008 to 2021. With the use of age‐classified Leslie matrix models to simulate Crested Ibis populations under different predation pressures, the random population growth rate was estimated, and the impact of predation on population dynamics was evaluated. The results showed that snakes and raptors were the main predators of Crested Ibis in the wild and reintroduced populations, and the number of dead individuals was unevenly distributed within the three age classes in both the wild population ( df = 2, χ 2 = 13.236, p < 0.05) and reintroduced population ( df = 2, χ 2 = 49.273, p < 0.01). Predation caused a reduction in the potential annual population growth rate of 2.37% (confidence interval [CI]: 2.29–2.45) in the wild population and 2.88% (CI: 2.82–2.94) in the reintroduced population. The overall average growth rates of the wild and reintroduced populations derived from population model simulations were 12.84 and 18.13%, respectively, which suggested that the wild and reintroduced populations was increasing under the current predation pressure and that the impact of predation on the population was acceptable and sustainable.
The Crested Ibis (Nipponia nippon) has long fascinated ornithologists with its enigmatic plumage color change. After more than a century of curiosity, the mystery was finally unraveled in the 1970s, unveiling the mechanism behind this remarkable transformation. Unlike other bird species, the Crested Ibis achieves its nuptial plumage coloration through a unique daubing behavior. After a water-bathing, it applies a sticky black substance secreted by a patch of skin in the neck and throat region. However, the chemical components of this black substance have not been studied in detail until now. To address this issue, we conducted a study to detect the components of the black substance and explore the relationship between sex hormone levels and the secretion of the black substance. We used enzyme-linked immunosorbent assay (ELISA) to measure the monthly changes in steroid hormone levels (estradiol E2, testosterone T, and progesterone PROG) levels in feces. We also analyzed the correlation between sex hormone levels and daubing behavior. The results showed that the sex hormone levels are closely related to the secretion and application of the black substance. In addition, we qualitatively analyzed the chemical components of the black substance using gas chromatography-mass spectrometry (GC-MS), uncovering the presence of 117 distinct chemical components. We assume that the black coloration results from the polymerization of selected chemical constituents among these components. These findings provide a groundwork for further exploration into the biological significance of the black substance. Overall, our study detected components in the black substance and studied how sex hormone levels relate to its secretion. Understanding the hormone effects on coloration helps in precise habitat management, like wetland preservation, crucial for Crested Ibis survival. Implementing hormone-boosting measures during breeding seasons enhances reproduction and health, vital for their conservation.
Babblers (Passeriformes: Leiothrichidae, Pellorneidae, Timaliidae) are parasitized by more genera of lice of the Brueelia complex than any other group of songbirds. However, the relationships of these louse groups are poorly known. We here try to resolve the relationships between Guimaraesiella (Guimaraesiella), Guimaraesiella (Cicchinella), and their putative sister group Priceiella by using mitochondrial cytochrome c subunit 1 (COI), 12S, and 16S sequences. Our data indicate that G. (Cicchinella) forms a monophyletic group of lice from babblers, but the relationship between G. (Guimaraesiella), G. (Cicchinella), and Priceiella could not be resolved. Moreover, the position of the third lineage of babbler-specific lice, containing only the aberrant species Guimaraesiella montisodalis, is unresolved. Morphologically, this species is different from all other Guimaraesiella in several characters and may represent a distinct lineage. We present some data indicating that (1) the Nanling Mountain range may be a biogeographical barrier to chewing lice and (2) host participation in mixed-species feeding flocks may influence host associations in Brueelia-complex chewing lice.
Reintroduction has become a common conservation management tool to restore endangered species in their historical range. However, many attempts have failed to establish self-sustaining populations in the wild. The success of reintroductions could be improved by varying release strategies. Therefore, it is vital to determine the factors influencing reintroduction outcomes. To better understand the post-release settlement and to optimize the release strategy of the Crested Ibis (Nipponia nippon), we quantified the effects of age, sex, acclimation duration, and the timing of release events on post-release survival and dispersal distance for the released Crested Ibis in Tongchuan City, Shaanxi Province, using a generalized linear mixed effect modeling approach. Our results indicate that 40-56.3% of the released individuals survived the first year following release. Mortality was attributable to flight collisions, starvation, disease, and unknown reasons. The post-release survival probability of ibises showed a negative association with age (estimate = -0.186; 95% CI: -0.350 to -0.022; P = 0.026), and post-release dispersal distance was affected by the timing of release event (estimate = 0.718; 95% CI: 0.025 to 1.253; P = 0.042). However, sex and acclimation period duration did not cause detectable differences in postrelease survival probability and dispersal distance. Based on our results, optimal release strategies for establishing a reintroduced population of the Crested Ibis include: (1) release of sub-adults biased and sex ratio balanced initial groups; (2) release during the non-breeding season; and (3) food supplementation immediately after release.