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Are Electrical Characterizations Consistent with the Cytochrome Structures of Geobacter 'Nanowires'

Electrically conductive filaments from Geobacter sulfurreducens were reported to be pili with metallic-like conductivity, and yet were later shown to be redox-active cytochromes by cryogenic electron microscopy. It has recently been argued that the filaments were simply misidentified, implying that key observations formerly used to refute the involvement of cytochromes in conductivity now must be ascribed to them. Herein, the temperature, pH, voltage, crystallinity, charge propagation, and aromatic density-related dependencies of the conductivity reported for putative pili are re-examined in light of the CryoEM structures of cytochrome filaments. It is demonstrated that: O_LIElectrons flow through cytochrome filaments in a succession of redox reactions for which the energetics are physically constrained and the kinetics are largely independent of protein identity for highly conserved heme packing geometries. Computed heme-to-heme electron transfer rates in cytochrome filaments agree, on average, within a factor of 10 of rates experimentally determined in other multi-heme proteins with the same heme packing geometries. C_LIO_LIT-stacked heme pairs, which comprise nearly or exactly half of all heme pairs in cytochrome filaments are electronic coupling-constrained bottlenecks for electron transfer that set the rate-limiting reaction to the {micro}s timescale, which is fast enough compared to typical ms enzymatic turnover. Tuning the conductivity of cytochromes over the reported [~]107-fold range for filaments from G. sulfurreducens strains with pili variants seems both physically implausible and physiologically irrelevant if those filaments are supposed to be cytochromes. C_LIO_LIThe protein-limited flux for redox conduction through a 300-nm filament of T- and slip-stacked heme pairs is predicted to be [~]0.1 pA; a G. sulfurreducens cell discharging [~]1 pA/s would need at least 10 filaments, which is consistent with experimental estimates of filament abundance. The experimental currents for the Omc- S and Z filaments at a physiologically relevant 0.1 V bias, however, are [~]10 pA and [~]10 nA, respectively. Some of the discrepancy is attributable to the experimental conditions of a dehydrated protein adsorbed on a bear Au- electrode that contacts [~]102 hemes, and in the case of conducting probe atomic force microscopy, is crushed under forces known to deform and change the electron transport mechanism through more highly-structured proteins. C_LIO_LIPreviously observed hallmarks of synthetic organic metallic-like conductivity ascribed to pili are inconsistent with the structurally resolved cytochrome filaments under physiological conditions, including (I) increased crystallinity promoting electron delocalization, (II) carbon nanotube-like charge propagation, and (III) an exponential increase-then-decrease in conductivity upon cooling, which was only explain by a model predicted on redox potentials known to be experimentally false. Furthermore, spectroscopic structural characterizations of OmcZ that attest to a huge acid-induced transition to a more crystalline state enhancing conductivity either strongly disagree with CryoEM analyses at higher pH values or give inconclusive results that can be overly interpreted. C_LI Overall, a significant discrepancy currently exists--not between theory and experiment--but between the CryoEM cytochrome filament structure in one hand and the other functional characterizations of Geobacter nanowires in the other. The CryoEM structures, theoretical models, biological experiments, and kinetic analyses are all in agreement about the nature and rate of electron transfer in multi-heme architectures under physiological conditions, and stand opposed to the solid-state functional characterizations of Geobacter filaments reported to date. The physiological relevance and/or physical plausibility of some experiments should be examined further.

biophysics↗

Gene expression tradeoffs determine bacterial survival and adaptation to antibiotic stress

To optimize their fitness, cells face the crucial task of efficiently responding to various stresses. This necessitates striking a balance between conserving resources for survival and allocating resources for growth and division. The fundamental principles governing these tradeoffs is an outstanding challenge in the physics of living systems. In this study, we introduce a coarse-grained theoretical framework for bacterial physiology that establishes a connection between the physiological state of cells and their survival outcomes in dynamic environments, particularly in the context of antibiotic exposure. Predicting bacterial survival responses to varying antibiotic doses proves challenging due to the profound influence of the physiological state on critical parameters, such as the Minimum Inhibitory Concentration (MIC) and killing rates, even within an isogenic cell population. Our proposed theoretical model bridges the gap by linking extracellular antibiotic concentration and nutrient quality to intracellular damage accumulation and gene expression. This framework allows us to predict and explain the control of cellular growth rate, death rate, MIC and survival fraction in a wide range of time-varying environments. Surprisingly, our model reveals that cell death is rarely due to antibiotic levels being above the maximum physiological limit, but instead survival is limited by the inability to alter gene expression sufficiently quickly to transition to a less susceptible physiological state. Moreover, bacteria tend to overexpress stress response genes at the expense of reduced growth, conferring greater protection against further antibiotic exposure. This strategy is in contrast to those employed in different nutrient environments, in which bacteria allocate resources to maximize growth rate. This highlights an important tradeoff between the cellular capacity for growth and the ability to survive antibiotic exposure.

systems biology↗

Investigating the Synergistic Role of GCN2 and HPA Axis in Regulating Integrated Stress Response in the Central Circadian Timing System

The circadian timing and integrated stress response (ISR) systems are fundamental regulatory mechanisms that maintain body homeostasis. The central circadian pacemaker in the suprachiasmatic nucleus (SCN) governs daily rhythms through interactions with peripheral oscillators via the hypothalamus-pituitary-adrenal (HPA) axis. On the other hand, ISR signaling is pivotal for preserving cellular homeostasis in response to physiological changes. Notably, disrupted circadian rhythms are observed in cases of impaired ISR signaling. In this work, we examine the potential interplay between the central circadian system and the ISR, mainly through the SCN and HPA axis. We introduce a semi-mechanistic mathematical model to delineate the suprachiasmatic nucleus (SCN)s capacity for indirectly perceiving physiological stress through glucocorticoid-mediated feedback from the HPA axis, and orchestrating a cellular response via the ISR mechanism. Key components of our investigation include evaluating general control nonderepressible 2 (GCN2) expression in the SCN, the effect of physiological stress stimuli on the HPA axis, and the interconnected feedback between the HPA and SCN. Simulation reveals a critical role for GCN2 in linking ISR with circadian rhythms. Notably, a Gcn2 deletion in mice led to swift re-entrainment of the circadian clock post simulated-jetlag. This is attributed to the diminished robustness of neuronal oscillators and an extended circadian period. Our model also offers insights into phase shifts induced by acute physiological stress and the alignment/misalignment of physiological stress with external light-dark cues. Such understanding aids in strategizing responses to stressful events, such as nutritional status changes and jetlag.

systems biology↗

Variations of autonomic arousal mediate the reportability of mind-blanking occurrences

Mind-blanking (MB) is the inability to report mental events during unconstraint thinking. Previous work shows that MB is linked to decreased levels of cortical arousal, indicating dominance of cerebral mechanisms when reporting mental states. What remains inconclusive is whether MB can also ensue from autonomic arousal manipulations, pointing to the implication of peripheral physiology to mental events. Using experience-sampling, neural, and physiological measurements in 26 participants, we first show that MB was reported more frequently in low arousal conditions, elicited by sleep deprivation. Also, there was partial evidence for a higher number of MB reports in high arousal conditions, elicited by intense physical exercise. Transition probabilities revealed that, after sleep deprivation, mind-wandering was more likely to be followed by MB and less likely to be followed by more mind-wandering reports. Using classification schemes, we show higher performance of a balanced random forest classifier trained on both neural and physiological markers in comparison to performance when solely neural or physiological were used. Collectively, we show that both cortical and autonomic arousal affect MB report occurrences. Our results establish that MB is supported by combined brain-body configurations, and, by linking mental and physiological states they pave the way for novel, embodied accounts of spontaneous thinking.

neuroscience↗

Signatures of social pain empathy: general and process-specific brain-wide representations of social exclusion and separation

Empathy can be elicited by physiological pain, as well as in social contexts. Although physiological and different social contexts induce a strong subjective experience of empathy, the general and context-specific neural representations remain elusive. Here, we combine fMRI with multivariate pattern analysis to establish neurofunctional models for pain empathy triggered by social exclusion and separation. Our findings revealed both overlapping and distinct neural representations for social exclusion and separation empathy across cortical and subcortical regions. This study established an evolutionary model that traces the progression from social pain to physiological pain empathy. In conclusion, this study establishes neural decoding models for pain empathy evoked by social exclusion and social separation, revealing their neural foundations and interconnectedness of empathy induced by social and physiological stimuli. These findings deepen our understanding of the neurobiological mechanisms underlying social pain empathy and provide robust neuromarkers to precisely evaluate empathy across physiological and social domains.

neuroscience↗

The External Microbiome Communicates with the Developing Zebrafish (Danio rerio) Embryo Through the Protective Chorion and Influences Developmental Trajectory

The microbiome has a significant influence on host physiological processes including energy metabolism and neurobiology. However, current knowledge is largely limited to post-embryonic development, highlighting a notable gap in host-microbe communication during embryonic development, particularly in oviparous organisms. This is because the developing embryo is protected from the external environment by the chorion and typically considered to be sterile. We hypothesized the external microbiome influences embryonic development in oviparous organisms despite lack of physical contact with microbes, shaping host physiology beyond embryogenesis. To test this interaction, we utilized zebrafish (Danio rerio) reared germ-free or conventionalized with microbes at different times during embryonic development (6 and 24 hours post fertilization) to examine changes in transcriptomics, proteomics, and physiology at 32 hours post-fertilization. In contrast to the prevailing notion, we reveal a significant role of the external aquatic microbial community in regulating embryonic transcript and protein abundance associated with critical developmental processes including energy metabolism and neurodevelopment. Furthermore, we demonstrate the external microbial community drives differential expression of genes involved in cytochrome P450 directed xenobiotic metabolism and associated bioenergetic and behavioral responses following exposure to a CYP1A activator during embryogenesis. These findings reveal embryonic development is an integration of host genetic blueprints and external microbial cues, enhancing knowledge of fundamental developmental processes influenced by embryo-microbe interactions that shape developmental susceptibility to environmental stressors. Significance StatementHost-microbiome interactions play a crucial role in shaping vertebrate physiology. However, the impact of these interactions during embryonic development remains poorly understood which has limited our evaluation of environmental drivers of developmental disorders and disease. Here, we provide evidence that the external microbiome indirectly communicates with the developing zebrafish (Danio rerio) embryo through the chorion, influencing physiological processes including bioenergetics, neurodevelopment, and xenobiotic responses. These findings signify a critical role of the external microbiome during the early stages of embryonic development and may inform research addressing the effects of the maternal microbiome on human embryonic and fetal development, particularly in the context of developmental origins of disease and prenatal chemical exposures.

developmental biology↗

Nitrogen ionome dynamics on leafy vegetables in tropical climate

Nitrogen is known to be a critical macro-nutrient influencing plant physiology, growth, and mineral composition. In tropical conditions, which are challenging for leafy vegetable farming, the nitrogen delivery effect is unclear. In this study, we aimed to investigate the effect of nitrogen application on key physiological traits and the mineral composition of the plants, the plant ionome. Experiments were conducted under tropical conditions greenhouse with varying levels of nitrogen supply to examine the effect on plant transpiration, yield, use efficiency of water and nitrogen, and nutrient uptake dynamics followed by cross-correlation analysis, trying to understand the physiological behavior-uptake dynamics relationships. The results demonstrated that transpiration, yield and WUE theoretic optimum curve, which peaking in nitrogen concentration of 120 mg/L for Chinese spinach and 200 mg/L for Chinese broccoli. Conversely, NUE reduce significantly with increasing nitrogen delivery which reflected on antagonistic increase of excess nitrogen. In terms of mineral composition, nitrogen application resulted in an increase I nitrogen content in the plant leaf tissue, while concentration of certain macronutrients and micronutrients were affected, including potassium, phosphorus, calcium, magnesium, iron, zinc, and molybdenum. Part of the minerals exhibited decreasing pattern due to potential competitive uptake mechanism, iron revealed increasing pattern that correlated with nitrogen delivery, and some minerals correlated with the measured physiological parameters. These results underscore the importance of optimizing nitrogen fertilization to balance plant growth, physiological processes, and plant nutrient homeostasis. The study offers valuable insights for sustainable nitrogen management in agricultural systems aimed at maximizing crop yield while maintaining nutritional quality.

plant biology↗

Blood Omics Models for System-Specific Mortality Risk Estimation

Traditional blood-based aging clocks provide an estimate of a persons overall biological age. However, physiological systems and organs age at different rates in an individual, and anti-aging interventions often target specific physiological systems. Therefore, there is a growing need for methods capable of assessing biological age at the level of specific physiological systems. Here, we used blood chemistry and cell count data from 456,180 individuals in the UK Biobank (UKB) to develop mortality-based predictors of biological age across 9 physiological systems matching WHOs International Classification of Disease (ICD-10) chapters (DiseaseAge). We applied DiseaseAge to the Health and Retirement Study (HRS) cohort and validated its ability to identify biologically older systems in individuals diagnosed or deceased from age-related diseases affecting those systems. For instance, individuals diagnosed with high blood pressure, heart attack, congestive heart failure, or angina exhibited a biologically older circulatory system than other systems. Similarly, individuals with accelerated aging in the circulatory, musculoskeletal, or respiratory systems displayed higher risk of mortality from conditions associated with these systems. Additionally, we showed that individuals within the top 5% biologically older metabolic, circulatory, respiratory and mental systems exhibited increased risk of developing diabetes, high blood pressure, lung disease and dementia, respectively. Finally, we used metabolomics and proteomics data in the UKB and epigenomics and transcriptomics in HRS to generate omics surrogates of DiseaseAge for all physiological systems and created an online resource for their calculation.

systems biology↗

Glucocorticoids target postnatal oligodendrocyte precursor cells to modulate adult hippocampal network plasticity and stress-induced behavior

Glucocorticoid receptors (GRs) are key mediators of how the stress hormone glucocorticoids (GCs) shape postnatal brain development and adaptive plasticity. Because GC signaling is critical during this period, postnatal GC concentrations are tightly regulated in the brain, whereas excessive levels of circulating GCs can disrupt developmental trajectories and increase the risk of psychiatric disorders later in life. GR function influences multiple neural cell types, but its cell-specific roles, particularly early in development, remain poorly understood. Oligodendrocyte precursor cells (OPCs), which generate myelinating oligodendrocytes and actively modulate neuronal networks, express GRs and can therefore respond to fluctuations in GC levels. Although excessive GC exposure during early life adversity has been linked to changes in OPC development, the physiological role of GR signaling specifically within OPCs remains unclear. To address this, we conditionally deleted GRs in postnatal OPCs in mice to investigate the role of physiological GC signaling in OPC proliferation and maturation, as well as in neuronal network activity and behavior. This deletion resulted in reduced oligodendrocyte and myelinated axon density in the hippocampus, sex-specific alterations in hippocampal activity and long-term potentiation following acute challenge, and impairments in memory formation in adulthood. Our findings reveal a novel, OPC-specific role for GRs and suggest that physiological GR activity in the oligodendrocyte lineage contributes to normal hippocampal plasticity, learning and memory. Significance StatementGlucocorticoid receptors (GRs) mediate the effects of the stress hormone glucocorticoids (GCs) on postnatal brain development and adaptive plasticity. While the function of GRs in neurons is well characterized, much less is known about their role in oligodendrocyte precursor cells (OPCs). OPCs, which give rise to myelinating oligodendrocytes and participate in the modulation of neuronal networks, express GRs and can therefore sense fluctuations in GCs during stress response; however, the physiological role of GRs in OPCs remains unclear. In this study, we found that deleting GRs in early postnatal OPCs reduced the density of oligodendrocytes and of myelinated axons, altered hippocampal activity and long-term potentiation in response to acute challenge, and impaired memory formation in adult mice. These findings identify OPCs as key targets of GR signaling and suggest that physiological receptor activity in the oligodendrocyte lineage contributes to normal hippocampal plasticity, learning, and memory.

neuroscience↗

Induction of Senescence During Postpartum Mammary Gland Involution supports tissue remodeling and promotes postpartum tumorigenesis

Cellular senescence is an evolutionarily conserved stress response1, yet its roles during physiological processes remain underexplored2,3. Senescent cells are known to promote tissue repair4,5 and suppress tumorigenesis6, but their accumulation contributes to various pathological and physiological processes, including cancer and ageing7-9. However, it is currently unknown whether physiological senescence can be co-opted by oncogenic events to promote tumorigenesis. Postpartum mammary gland involution is a major tissue remodelling event in adulthood10,11, resembling the wound healing process, and is closely linked to postpartum breast cancer (PPBC)12 providing a compelling context to investigate this question. Here, we show that senescence is induced in alveolar luminal cells during involution in a p16-dependent manner. Reducing senescent cells hinders tissue remodeling and delays involution, underscoring their physiological importance. However, using a PPBC mouse model where the oncogenic event coincides with involution, we demonstrate that eliminating involution-associated senescent cells markedly extended the cancer latency. Mechanistically, we reveal that senescent cells enhance tumor-initiating cell plasticity in a paracrine manner, promoting tumor invasion and metastasis. Collectively, our findings uncover a dual role of senescence in mediating postpartum tissue remodeling and promoting tumorigenesis, highlighting a scenario where physiological senescence is hijacked to drive cancer progression. This work underscores that senescence might be a unifying mechanism linking tissue repair to tumorigenesis.

cell biology↗

Hydrodynamic cues enhance algal lipid production while sustaining biomass in motile species

Achieving enhanced lipid yield without compromising biomass is one of the long-standing challenges in our quest to produce algal biofuel sustainably. Multiple factors, including temperature, nutrients and light conditions impact lipid production, however such lipid-enhancing strategies often lead to reduced biomass, thereby offsetting the total volume of lipid recovered. Hydrodynamic cues remain poorly studied, specifically in the context of lipid production in motile algae, concurrently with biomass generation and photo-physiology, a key fitness parameter. By imposing hydrodynamic cues to biophysically stress distinct strains of raphidophyte Heterosigma akashiwo at specific time points along the growth stages (indicating different nutritional states), we quantify the lipid production, alongside algal biomass and photo-physiology. Early induction (hydrodynamic cues implemented during the lag phase) and delayed induction (hydrodynamic cues implemented during the exponential phase) were studied. Delayed induction of hydrodynamic cues suppressed growth and photo-physiology without significant enhancement of lipid production, however, early induction allowed to significantly increase lipid content, up to 300%, without observable changes in biomass and photo-physiology. Based on this, we propose a hydrodynamic strategy for enhanced lipid production with sustained biomass and physiological fitness. This work presents hydrodynamic perturbation and its onset timing as tunable parameters to advance lipid production technologies across diverse motile species.

bioengineering↗

Modeling cerebral development in vitro with L-MYC-immortalized human neural stem cell-derived organoids

A promising advance for ex vivo studies of human brain development and formulation of therapeutic strategies has been the adoption of brain organoids that, to a greater extent than monolayer or spheroid cultures, recapitulate to varying extents the patterns of tissue development and cell differentiation of human brain. Previously, such studies been hampered by limited access to relevant human tissue, inadequate human in vitro models, and the necessity of using rodent models that imperfectly reproduce human brain physiology. Here we present a novel organoid-based research platform utilizing L-MYC-immortalized human fetal neural stem cells (LMNSC01) grown in a physiological 4% oxygen environment. We visualized developmental processes in LMNSC01 brain organoids for over 120 days in vitro by immunofluorescence and NanoString gene expression profiling. Gene expression patterns revealed by NanoString profiling were quantitatively compared to those occurring during normal brain development (BrainSpan database) using the Singscore method. We observe similar developmental patterns in LMNSC01 organoids and developing cortex for genes characterizing neurons, astrocytes, and oligodendrocytes, and multiple pathways including those involved in apoptosis, neuronal cytoskeleton, neurotransmission, and metabolism. Notable properties of this LMNSC01 platform are its initiation with immortalized authentic human neural stem cells, growth in a physiological oxygen environment, the consistency of the organoids produced, and favorable comparison of their gene expression patterns with those reported for normal cortical development. SUMMARYEx vivo studies of human brain development has been advanced by adoption of organoids recapitulating to varying extents in utero patterns of tissue development and cell differentiation. We here present an organoid-based human cortical development platform employing immortalized fetal neural stem cells (LMNSC01) grown in a physiological (4% oxygen) environment. Characterizing LMNSC01 organoids for over 120 days in vitro by immunofluorescence and expression profiling (using NanoString), and then comparing these profiles to those of normal cortical development (BrainSpan database), revealed similar developmental patterns for neurons, astrocytes and oligodendrocytes. Notable properties of this platform are its initiation with immortalized authentic human NSCs, growth at physiological oxygen concentration, and subsequent favorable comparison of their gene expression patterns with those observed during cortical development.

neuroscience↗

Heterogeneous distribution of glial cell marker proteins and of cell nucleus marker in the myelinated region of the normal rat optic nerve

Glial cells play a critical role in the maintenance of neuronal activity in the optic nerve. The present study reports the distribution of glial structural proteins (GFAP: glial fibrillary acidic protein; MBP: myelin basic protein), a glial functional protein (GS: glutamine synthetase), and of a cell nuclear marker (bisBenzimide) in the various myelinated regions of the normal rat optic nerve. Fourteen optic nerves from 12 male Sprague-Dawley rats were used. Immunohistochemistry and confocal microscopy were employed to investigate the distribution of GFAP, MBP, GS, and of bisBenzimide along the longitudinal plane of the myelinated region. GFAP-immunoreactivity and GS-immunoreactivity were strong in the distal (anterior)-most part but weak in the proximal (posterior) part, demonstrating a significant decrease in strength along the longitudinal plane of the myelinated region. bisBenzimide labeling was also strong in the distal-most part but weak in the proximal part, indicating a significant difference in strength across the myelinated region. MBP-immunoreactive particles and cell nuclei were densely distributed in the distal-most part; however, they were sparsely dispersed in the proximal part, showing a significant difference. The heterogeneous distribution of GFAP, GS, bisBenzimide, cell nuclei, and of MBP-immunoreactive particles along the longitudinal plane may represent an important functional adaptation reflecting the non-uniform nature of the physiological and structural environment of the myelinated region. Notably, the concentrations of GFAP, GS, and of MBP-immunoreactive particles in the distal-most part of the myelinated region suggest that this area is under physiologically stressed conditions in the normal rat optic nerve. Key pointsO_LIThe present study reports the distribution of glial structural proteins (GFAP: glial fibrillary acidic protein; MBP: myelin basic protein), and of a glial functional protein (GS: glutamine synthetase) in the various myelinated regions of the normal rat optic nerve. C_LIO_LIGFAP-immunoreactivity and GS-immunoreactivity were strong in the distal (anterior)-most part but weak in the proximal (posterior) part. C_LIO_LIMBP-immunoreactive particles were densely distributed in the distal-most part; however, they were sparsely dispersed in the proximal part. C_LIO_LIThese results suggest that the distal-most part is not under physiological but rather under physiologically stressed conditions in the normal rat optic nerve. C_LI Graphical AbstractThe present study reports the distribution of glial structural pro-teins (GFAP: glial fibrillary acidic protein; MBP: myelin basic protein), and of a glial functional protein (GS: glutamine syn-thetase) in the various myelinated regions of the normal rat optic nerve. GF AP-immunoreactivity and GS-immunoreactivity were strong in the distal (anterior)-most part but weak in the proximal (poste-rior) part. MBP-immunoreactive particles were densely distributed in the distal-most part; however, they were sparsely dispersed in the proximal part. These results suggest that the distal-most part is not under physi-ological but rather under physiologically stressed conditions in the normal rat optic nerve. O_FIG O_LINKSMALLFIG WIDTH=197 HEIGHT=200 SRC="FIGDIR/small/643607v2_ufig1.gif" ALT="Figure 1"> View larger version (37K): org.highwire.dtl.DTLVardef@54c666org.highwire.dtl.DTLVardef@1ad8f3borg.highwire.dtl.DTLVardef@196870borg.highwire.dtl.DTLVardef@17c1641_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Direct causality measures unravel complex networks of cardiovascular oscillations and their modifications with postural stress

This study provides a comprehensive investigation of the spontaneous short-term regulatory mechanisms affecting cardiovascular and cardiorespiratory interactions during supine rest and in response to postural stress. The direct causality measure of conditional transfer entropy was applied to beat-to-beat heart period, arterial pressure, respiration, and arterial compliance variability series assessed in thirty-nine healthy subjects during the supine resting state and the orthostatic challenge. The inferred physiological networks behind these two conditions reveal well-known regulatory mechanisms, such as the tilt-induced decreased respiratory sinus arrhythmia (RSA) and increased baroreflex, as well as less explored interactions such as those involving compliance, which suggest striking physiological responses. Specifically, we found tight relationships between compliance and heart period, arterial pressure and respiration, which advocate the non negligible involvement of this cardio-vascular parameter into the intricate hank of the most studied physiological interconnections. Furthermore, the joint use of parametric and model-free estimation approaches allowed us to infer the prevalence of linear and nonlinear dynamics, as well as the effects on the inferred directed links of low- and high-frequency oscillations reflecting autonomic modulation. In conclusion, our study proves that direct causality measures are crucial to assess the characteristic links of complex cardiovascular networks and infer the many underlying short-term regulatory mechanisms. NEW & NOTEWORHTYWhile short-term regulatory mechanisms involving heart period, respiration and arterial pressure have been widely investigated, the way they produce and buffer cardiovascular oscillations in different physiological states is not fully understood. This study proposes a thorough investigation of a four-node physiological network, including the less explored arterial compliance variability, and provides insights into the linear vs. nonlinear characterization and spectral content of the causal dynamics representing each link within the network.

bioengineering↗

Simple 3D-Printed Stirred Bioreactor Enhances Retinal Organoid Production Via Improved Oxygenation

Retinal organoids (ROs), derived from human pluripotent stem cells (hPSCs), simulate in vivo development and retinal morphology, providing a platform to study retinal development and diseases. However, current differentiation protocols often yield inconsistent results with substantial cell line and batch variability. These protocols utilize static culture methods that rely on passive oxygen diffusion to reach the vessel bottom, where adherent hPSCs initially differentiate. Static culture is standard for adherent monolayer cells and is presumed suitable for RO differentiation. We questioned this assumption given that, during differentiation, the monolayer hPSCs become highly structured and multi-layered, first as neural rosettes and then as optic vesicles (OVs). We hypothesized that the cellular oxygen consumption rate would exceed the rate of delivery via passive diffusion, particularly to inner regions of emerging OVs. To test this hypothesis, we measured dissolved oxygen concentrations at the vessel bottom and found that within hours of media change, oxygen dropped to < 1 %, a level considered non-physiologically hypoxic, which imperils cell viability. This non-physiological hypoxia caused OV degeneration, hypoxic marker expression, and necrosis. To address this problem, we developed a novel 3D-printed stirred bioreactor (SBR) that maintains physiological oxygen levels between [~]4-6%. This approach significantly improved organoid yield, quality, and reproducibility while being easily adaptable to typical laboratory cell culture workflows. We conclude that non-physiological hypoxia, a previously unappreciated condition, is a limiting factor underlying inconsistent yield and quality in RO production. Physiological oxygenation levels can be restored by the SBR platform, resulting in greater consistency and improved production outcomes.

bioengineering↗

Fluidic Programmable Gravi-maze Array for High Throughput Multiorgan Drug Testing

The high attrition rate of drug candidates in clinical trials underscores the urgent need for more predictive preclinical models that accurately replicate human physiology. Traditional 2D cell cultures and animal models often fail to predict human responses due to their limited physiological relevance, particularly for biologics and immunotherapies involving complex multicellular and cross-organ interactions. This highlights the need for modeling and measurements of multiorgan interactions at higher throughput, prompting the development of multiorgan-on-a-plate platforms. Here, we present OrganRX, a modular, gravity-driven recirculation-based platform designed to imitate human organ function, physiological flow, immune cells circulation, and inter-organ communication in vitro. The Fluidic Programmable Gravi-maze Array (FPGA) technology integrates multiple organ models, including gut, liver, kidney, brain, tumor, and vascular compartments, within a microfluidic architecture designed to reproduce physiologically relevant shear stresses and gravity-driven recirculating flow that facilitates inter-organ communication. Using computational fluid dynamics (CFD) simulations and impedance-based flow validation, we confirmed accurate shear control across organ compartments. Organ-specific and multiorgan models were constructed using 3D extracellular matrix hydrogels and assessed for metabolism, toxicity, and senescence. Liver-kidney co-cultures demonstrated metabolic interplay via differential albumin and urea production. In addition, the platform was evaluated for biologics testing using immune-oncology models incorporating tumor spheroids, endothelial barriers, and circulating immune cells. Antigen-specific T-cells, checkpoint inhibitors, bispecific antibody and antibody-drug conjugate (ADC) studies demonstrated the ability to measure on-target tumor killing, off-target toxicity, cytokine release, and bystander effects across interconnected tissue compartments under dynamic recirculating conditions. The system enabled longitudinal evaluation of immune-mediated cytotoxicity, tissue-selective responses, and cross-organ signaling not readily captured in conventional static assays. Overall, the OrganRX platform offers a physiologically relevant, scalable, and automation-compatible platform for preclinical drug evaluation, biologics safety assessment, and disease modeling. Its ability to capture complex, dynamic inter-organ effects position it as a powerful tool for advancing translational research, mechanistic toxicology, and precision medicine.

bioengineering↗

Bringing the Lab to the Field: Validating Water-Borne Corticosterone as a Conservation Tool in Captive and Wild Amphibian Larvae

Assessing physiological condition in wild populations is important for understanding how environmental variation shapes organismal performance. Water-borne corticosterone (WB-CORT) sampling shows promise for studying amphibian stress physiology, but its ecological relevance and limitations require evaluation, particularly when methods developed under laboratory conditions are applied to wild individuals. Here, we evaluated WB-CORT sampling in common frog (Rana temporaria) larvae by comparing field-collected and laboratory-reared individuals. We examined whether origin influenced baseline physiological traits by modeling ontogenetic changes in WB-CORT and body mass, an integrative measure of growth. Across ontogeny, laboratory-reared larvae generally showed lower WB-CORT release and higher body mass than field-collected larvae, with distinct developmental trajectories in both traits. Next, we evaluated the sensitivity of WB-CORT and body mass to acute (48h) nitrate exposure, a widespread pollutant in amphibian breeding ponds. Nitrate treatment did not affect post-exposure WB-CORT release in either origin group. Field-collected larvae lost body mass across all treatments, including controls, whereas laboratory-reared larvae showed nitrate-specific mass loss only at 100 mg/L. Finally, we assessed whether total WB-CORT release reflected internal corticosterone by examining its relationship with tissue CORT concentrations. WB-CORT and tissue CORT were positively related in both groups, supporting WB-CORT as a minimally disruptive physiological measure under the conditions tested. Together, these findings show that WB-CORT captures biologically meaningful variation in internal corticosterone under the conditions tested, but did not detect a sustained response to the acute nitrate challenge. WB-CORT should therefore be viewed as a promising, context-dependent physiological indicator rather than a stand-alone stress biomarker.

ecology↗

Pre-conscious reactions to faces as the biological roots of emotion perception

Bodies respond to others emotions through subtle physiological changes. Whether these responses require conscious emotion recognition is debated. Here, we examined the relationship between visual awareness and physiological arousal in response to emotional faces. We recorded facial electromyography (EMG), electrodermal activity (EDA), and pupil dilation during the presentation of fearful, happy, and neutral faces, as well as their phase-scrambled versions, to the left eye. Meanwhile, rapidly changing Mondrian patterns were displayed to the right eye to suppress the left-eye stimuli. Participants pressed a button when they noticed a change from the flickering mask. This setup allowed us to compare behavioural and physiological responses during conscious versus subconscious processing of emotional content. Results showed faster breakthrough times for happy faces and moderate physiological responses to emotional information, even without conscious perception. Specifically, pupils and facial EMG were more responsive to fearful than to happy or neutral expressions. EDA was higher for faces compared to control stimuli, regardless of the emotional expression. Once visual awareness was established, emotional expressions elicited distinct responses that aligned with the perceived emotion. An exploratory analysis revealed a negative correlation between pupil dilation and autistic, alexithymic, and schizotypal traits, whereas empathy traits correlated positively. Our findings highlight the role of subcortical visual processing in detecting emotionally relevant stimuli and show that social abilities are linked to the physiological processing of emotions at a subconscious level. They underscore how subcortical mechanisms interact with the autonomic nervous system, enhancing our understanding of the biological foundations of emotion perception.

neuroscience↗