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Biology subjects

Pappert, F. A.

Publications and source records attributed to Pappert, F. A..

3 recordsLinked to original sources

Surviving on limited resources: effects of caloric restriction on growth, gene expression and gut microbiota in a species with male pregnancy (Hippocampus erectus).

Caloric restriction (CR) studies have traditionally focused on species with conventional reproductive roles, emphasizing females greater investment in costly gametes and parental care. While the divergent impact of CR on males and females is evident across species, the factors driving this variation, i.e., resource allocation to reproductive elements as part of distinct life history strategies, remain unclear. To address this, we investigated the effects of CR on development, gene expression, and intestinal microbiota in the lined seahorse Hippocampus erectus, a species with male pregnancy, where fathers invest in offspring through gestation. Juvenile seahorses were subjected to ad libitum (AL) or CR feeding for 5 months. CR stunted male growth and brood pouch development, reflecting the energy demands of this crucial parental care trait. However, condition index declined in CR females but not males, while ovarian weight remained unchanged. Transcriptome analysis demonstrated organ- and sex-specific responses to CR with distinct lipid and energy-related pathways activated in male and female livers, indicative of survival enhancement strategies. CR had minimal impact on genes associated with spermatogenesis, but downregulated lipid metabolic and inflammatory genes in ovaries, emphasizing the importance of pre-copulatory resource allocation in female gametes. CR strongly shaped gut microbial composition, creating distinct communities from AL seahorses while also driving sex-specific taxonomic differences. Our research indicates that nutrient limitatio[n]s impact on males and females is influenced by their allocation of resources to reproduction and parental investment. We underscore the significance of studying species with diverse reproductive strategies, sex roles, and life-history strategies.

evolutionary biology↗

The effect of parental age on the quantity and quality of offspring in Syngnathus typhle, a species with male pregnancy.

Offspring quantity and quality are known to vary according to parental age, with most studies focusing on the mothers age, who produces costly eggs and often carries out pregnancy, hampering to distinction between trans-generational age effects due to egg quality or physiological deterioration. We investigated the ramification of parental age on the offspring in the broad-nosed pipefish Syngnathus typhle, a fish species with male pregnancy, allowing us to separate these two female traits. By mating parents of different sizes we examined the impact of parental age on offspring number, size and gene expression. Our results show that older parents produced more and larger-sized offspring. However, we revealed intriguing insights into the differential gene expression patterns in offspring, strongly influenced by the paternal lineage but minimally affected by maternal age. Offspring from old fathers exhibited notable changes in gene expression profiles, particularly related to cell cycle regulation, metabolism, protein synthesis, stress response, DNA repair and neurogenesis. Our findings provide valuable insights into the role of pregnancy in shaping offspring physiology. Moreover, we recognize the value of assessing a broader range of species that have evolved with sex-specific differences in parental investment vs. gamete provisioning, as the age of either the mother or father may hold greater significance than the other in influencing offspring fitness.

evolutionary biology↗

Sex or sex role - unravelling the evolutionary route of sex-specific senescence

Sexual dimorphism, the divergence in morphological traits between males and females of the same species, is often accompanied by sex-biased gene expression. However, the majority of research has focused on species with conventional sex roles, where females have the highest energy burden with both egg production and parental care, neglecting the diversity of reproductive roles found in nature. We investigated sex-biased gene expression in the broadnosed pipefish (Syngnathus typhle), a sex-role reversed species with male pregnancy, allowing us to separate these two female traits. Employing RNA sequencing, we examined gene expression across organs (brain, head kidney, gonads) at various life stages, encompassing differences in age, sex, and reproductive status. While some gene groups were more strongly associated with sex roles, such as stress resistance and immune defence, others were driven by biological sex, such as energy and lipid storage regulation in an organ- and age-specific manner. By investigating how genes regulate and are regulated by changing reproductive roles and resource allocation in a model system with unconventional life-history strategy, we aim to enhance our understanding of the importance of sex and sex role in regulating gene expression patterns, broadening the scope of this discussion to encompass a wide range of organisms.

evolutionary biology↗