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Uncovering the essential roles of human GCP 2 orthologs in Caenorhabditis elegans.

Human glutamate carboxypeptidase 2 (GCP2) from the M28B metalloprotease group is an important target for therapy in neurological disorders and an established tumor marker. However, its physiological functions remain unclear. To better understand general roles, we used the model organism Caenorhabditis elegans genetically manipulate its three existing orthologous genes and evaluate the impact on worm physiology. The results of gene knockout studies showed that C. elegans GCP2 orthologs affect the pharyngeal physiology, reproduction, and structural integrity of the organism. Promoter-driven GFP expression revealed distinct localization for each of the three gene paralogs, with gcp-2.1 being most abundant in muscles, intestine, and pharyngeal interneurons, gcp-2.2 restricted to the phasmid neurons, and gcp-2.3 located in the excretory cell. This study provides new insight into the unique phenotypic effects of GCP2 gene knockouts in C. elegans, and the specific tissue localizations. We believe that elucidation of particular roles in a non-mammalian organism can help to explain important questions linked to human GCP2 physiology and in extension to GCP2 involvement in pathophysiological processes.

biochemistry↗

Combining high-resolution imaging, deep learning, and dynamic modelling to separate disease and senescence in wheat canopies

Maintenance of sufficient healthy green leaf area after anthesis is key to ensuring an adequate assimilate supply for grain filling. Tightly regulated age-related physiological senescence and various biotic and abiotic stressors drive overall greenness decay dynamics under field conditions. Besides direct effects on green leaf area in terms of leaf damage, stressors often anticipate or accelerate physiological senescence, which may multiply their negative impact on grain filling. Here, we present an image processing methodology that enables the monitoring of chlorosis and necrosis separately for ears and shoots (stems + leaves) based on deep learning models for semantic segmentation and color properties of vegetation. A vegetation segmentation model was trained using semi-synthetic training data generated using image composition and generative adversarial neural networks, which greatly reduced the risk of annotation uncertainties and annotation effort. Application of the models to image time-series revealed temporal patterns of greenness decay as well as the relative contributions of chlorosis and necrosis. Image-based estimation of greenness decay dynamics was highly correlated with scoring-based estimations (r {approx} 0.9). Contrasting patterns were observed for plots with different levels of foliar diseases, particularly septoria tritici blotch. Our results suggest that tracking the chlorotic and necrotic fractions separately may enable (i) a separate quantification of the contribution of biotic stress and physiological senescence on overall green leaf area dynamics and (ii) investigation of the elusive interaction between biotic stress and physiological senescence. The potentially high-throughput nature of our methodology paves the way to conducting genetic studies of disease resistance and tolerance.

plant biology↗

Sex differences in pharmacokinetics, central accumulation, and behavioural effects of oral cannabis consumption in male and female C57BL/6 mice.

BackgroundCannabis edibles are an increasingly popular form of cannabis consumption. Oral consumption of cannabis has distinct physiological and behavioural effects than injection or inhalation. An animal model is needed to understand the pharmacokinetics and physiological effects of oral cannabis consumption in rodents as a model for human cannabis edible use. MethodsAdult male and female C57BL/6 mice received a single dose of commercially available cannabis oil (5 mg/kg THC) by oral gavage. At 0.5-, 1-, 2-, 3-, and 6-hours post-exposure, plasma, hippocampus, and adipose tissue was collected for THC, 11-OH-THC, and THC-COOH measures. ResultsWe report delayed time to peak THC and 11-OH-THC concentrations in plasma, brain and adipose tissue, which is consistent with human pharmacokinetics studies. We also found sex differences in the cannabis tetrad: (1) female mice had a delayed hypothermic effect 6 hours post-consumption, which was not present in males; (2) females had stronger catalepsy than males; (3) males were less mobile following cannabis exposure, whereas female mice showed no difference in locomotion but an anxiogenic effect at 3h post exposure; and (4) male mice displayed a longer lasting antinociceptive effect of oral cannabis. ConclusionsOral cannabis consumption is a translationally relevant form of administration that produces similar physiological effects as injection or vaping administration and thus should be considered as a viable approach for examining the physiological effects of cannabis moving forward. Furthermore, given the strong sex differences in metabolism of oral cannabis, these factors should be carefully considered when designing animal studies on the effects of cannabis. Significance statementOral delivery of cannabis oil in mice is a translational model that increases plasma, hippocampal, and adipose cannabinoids. Furthermore, oral cannabis and produces lasting psychoactive effects including sex dependent effects on hypothermia, cataplexy, locomotor activity and nociception.

pharmacology and toxicology↗

Mitochondrial calcium signaling mediated transcriptional regulation of keratin filaments is a critical determinant of melanogenesis

Mitochondria are versatile organelles that regulate several physiological functions. Many mitochondria-controlled processes are driven by mitochondrial Ca2+ signaling. However, role of mitochondrial Ca2+ signaling in melanosome biology remains unknown. Here, we show that pigmentation requires mitochondrial Ca2+ uptake. In vitro gain and loss of function studies demonstrated that Mitochondrial Ca2+ Uniporter (MCU) is crucial for melanogenesis while the MCU rheostats, MCUb and MICU1 negatively control melanogenesis. Zebrafish and mouse models showed that MCU plays a vital role in pigmentation in vivo. Mechanistically, MCU controls activation of transcription factor NFAT2 to induce expression of three keratins (keratin 5, 7 and 8), which we report as positive regulators of melanogenesis. Interestingly, keratin 5 in turn modulates mitochondrial Ca2+ uptake thereby this signaling module acts as a negative feedback loop that fine-tunes both mitochondrial Ca2+ signaling and melanogenesis. Mitoxantrone, an FDA approved drug that inhibits MCU, decreases physiological melanogenesis. Collectively, our data demonstrates a critical role for mitochondrial Ca2+ signaling in vertebrate pigmentation and reveal the therapeutic potential of targeting MCU for clinical management of pigmentary disorders. Given the centrality of mitochondrial Ca2+ signaling and keratin filaments in cellular physiology, this feedback loop may be functional in a variety of other pathophysiological conditions. HighlightsO_LIMCU complex mediated mitochondrial Ca2+ uptake is a novel regulator of vertebrate pigmentation C_LIO_LIKeratin filaments bridge mitochondrial Ca2+ signaling to melanosome biogenesis and maturation C_LIO_LITranscription factor NFAT2 connects mitochondrial Ca2+ dynamics to keratins expression C_LIO_LIMCU-NFAT2-Keratin 5 signaling module generates a negative feedback loop to maintain mitochondrial Ca2+ homeostasis and to ensure optimal melanogenesis C_LIO_LIInhibiting MCU with mitoxantrone, an FDA approved drug, leads to reduction in physiological pigmentation C_LI

cell biology↗

Exposure to false cardiac feedback alters pain perception and anticipatory cardiac frequency.

The experience of pain, like other interoceptive processes, has recently been conceptualized in terms of predictive coding and free energy frameworks. In these views, the brain integrates sensory, proprioceptive, and interoceptive signals to generate probabilistic inferences about upcoming events, which shape both the state and the perception of our inner body. Here we ask whether it is possible to induce pain expectations by providing false faster (vs. slower) acoustic cardiac feedback before administering electrical cutaneous shocks. We test whether these expectations will shape both the perception of pain and the bodys physiological state toward prior predictions. Results confirmed that faster cardiac feedback elicited pain expectations that affected both perceptual pain judgments and the bodys physiological response. Perceptual pain judgments were biased towards the expected level of pain, such that participants illusorily perceived identical noxious stimuli as more intense and unpleasant. Physiological changes mirrored the predicted level of pain, such that participants actual cardiac response in anticipation of pain stimuli showed a deceleration in heart rate, in line with the well-known orienting cardiac response in anticipation of threatening stimuli (Experiment 1). In a control experiment, such perceptual and cardiac modulations were dramatically reduced when the feedback reproduced an exteroceptive, instead of interoceptive, cardiac feedback (Experiment 2). These findings show that cardiac perception can be understood as interoceptive inference that modulates both our perception and the physiological state of the body, thereby actively generating the interoceptive and autonomic consequences that have been predicted.

neuroscience↗

Photoacoustic Imaging as a Novel Non-Invasive Biomarker to Assess Intestinal Tissue Oxygenation and Motility in Neonatal Rats

BackgroundWithin the premature infant intestine, oxygenation and motility play key physiological roles in healthy development and disease such as necrotizing enterocolitis. To date, there are limited techniques to reliably assess these physiological functions that are also clinically feasible for critically ill infants. To address this clinical need, we hypothesized that photoacoustic imaging (PAI) can provide non-invasive assessment of intestinal tissue oxygenation and motility to characterize intestinal physiology and health. MethodsUltrasound and photoacoustic images were acquired in 2-day and 4-day old neonatal rats. For PAI assessment of intestinal tissue oxygenation, an inspired gas challenge was performed using hypoxic, normoxic, and hyperoxic inspired oxygen (FiO2). For intestinal motility, oral administration of ICG contrast agent was used to compare control animals to an experimental model of loperamide-induced intestinal motility inhibition. ResultsPAI demonstrated progressive increases in oxygen saturation (sO2) as FiO2 increased, while the pattern of oxygen localization remained relatively consistent in both 2-day and 4-day old neonatal rats. Analysis of intraluminal ICG contrast enhanced PAI images yielded a map of the motility index in control and loperamide treated rats. From PAI analysis, loperamide significantly inhibited intestinal motility, with a 32.6% decrease in intestinal motility index scores in 4-day old rats. ConclusionThese data establish the feasibility and application of PAI to non-invasively and quantitatively measure intestinal tissue oxygenation and motility. This proof-of-concept study is an important first step in developing and optimizing photoacoustic imaging to provide valuable insight into intestinal health and disease to improve the care of premature infants. HighlightsO_LIIntestinal tissue oxygenation and intestinal motility are important biomarkers of intestinal physiology in health and disease of premature infants. C_LIO_LIThis proof-of-concept preclinical rat study is the first to report application of photoacoustic imaging for the neonatal intestine. C_LIO_LIPhotoacoustic imaging is demonstrated as a promising non-invasive diagnostic imaging method for quantifying intestinal tissue oxygenation and intestinal motility in premature infants. C_LI Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=145 HEIGHT=200 SRC="FIGDIR/small/545971v1_ufig1.gif" ALT="Figure 1"> View larger version (37K): org.highwire.dtl.DTLVardef@585d0forg.highwire.dtl.DTLVardef@145a2bcorg.highwire.dtl.DTLVardef@bf0c46org.highwire.dtl.DTLVardef@bed354_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗

Identification of three distinct cell populations for urate excretion in human kidney

In humans, uric acid is an end-product of purine metabolism. Urate excretion from human kidney is tightly regulated by reabsorption and secretion. At least eleven genes have been identified as human renal urate transporters. However, it remains unclear whether all renal tubular cells express the same set of urate transporters. Here we show that renal tubular cells are divided into three distinct cell populations for urate handling. Analysis of healthy human kidneys at single-cell resolution revealed that not all renal tubular cells expressed the same set of urate transporters. Only 32% of renal tubular cells were related to both reabsorption and secretion, while the remaining renal tubular cells were related to either reabsorption or secretion, at 5% and 63% respectively. These results provide physiological insight into the molecular function of the transporters and renal urate handling on cell-units. Our findings also suggest that three different tubular cell populations cooperate to regulate urate excretion from human kidney. Highlight/Key pointsO_LIWe identified three distinct cell populations within the human renal anatomy that predict putative cellular transport mode, and our findings indicate cellular inhomogeneity with distinct roles such as urate secretion and reabsorption. C_LIO_LIOur model of physiological urate handling demonstrates the excretion dynamics in human kidney in terms of single cell-units. C_LIO_LIOur cellular urate transport analyses suggest the reversibility of some urate transporters even in certain physiological conditions. C_LIO_LIThe physiological function of SLC2A9 is not limited to urate reabsorption; it is also involved in urate secretion restriction. C_LIO_LIThis methodology can be applied to investigations of transport mechanisms in general, regardless of epithelial cell types, species, and substrates. C_LI

bioinformatics↗

Associating with kin selects against disease tolerance

Behavioural and physiological immunity are key to slowing epidemic spread. Here, we explore the evolutionary and epidemic consequences of their different costs for the evolution of tolerance vs. resistance: behavioural resistance affects social cohesion, with associated group-level costs, while physiological resistance costs should accrue to the individual. Further, the transmission-reduction benefits of resistance accrue differently to susceptible hosts and those already infected; infected hosts only benefit indirectly, by reducing transmission to kin. We therefore model the coevolution of transmission-reducing defences expressed in susceptible hosts with those expressed in infected hosts, as a function of kin association, and analyse the effect on population-level outcomes. Using parameter values for guppies, Poecilia reticulata, and their gyrodactylid parasites, we find that: 1) either susceptible or infected hosts should invest heavily in preventing infection, but not both; 2) kin association drives investment in physiological resistance more strongly than in behavioural resistance; 3) even weak levels of kin association can favour altruistic infected hosts that invest heavily in resistance (vs. selfish tolerance), eliminating the disease. Overall, our finding that weak kin association affects the coevolution of infected and susceptible investment in both behavioural and physiological immunity suggests that kin selection may affect disease dynamics across systems.

evolutionary biology↗

Insights into Biomarker Correlations in Relation to Stress: A Preliminary Analysis

The objective of this study was to analyze specific biomarkers of interest and find correlations between them using hormonal and cardiovascular measurements. The aim was to explore these physiological patterns during a typical weekday. While this research provides valuable insights into physiological patterns and their potential impact on mental performance, its essential to note that the study did not aim to diagnose, treat, or propose specific medical interventions based on the findings. Instead, the focus was solely on observational data collection and analysis for the purpose of exploring correlations and understanding daily physiological fluctuations in the context of stress and cognitive performance. Furthermore, the team observed how a low-level stress-triggered cognitive task could alter, and possibly impair, mental performance due to fluctuations in these selected data points. Five (5) adult, healthy participants (aged between 20 and 35 years) volunteered for the small-scaled study (two male and three female). In the current study, participants with larger hormonal and cardiovascular fluctuations during a 5-minute stress-induced task did not achieve as well as those with more stable physiological measurements. Interestingly, a significant peak in cortisol levels was detected during the mental task, likely due to the stress-induced environment. The current, and vastly limited methods used for at-home, hormonal measurements, as well as the slightly unreliable sensor technology used in general pulse oximeters measuring blood oxygen saturation in this trial, indicate the great need to develop new solutions. This includes innovations that would make health monitoring more convenient, while at the same time emphasizing improved mental well-being in daily situations, all without having to continuously wear a gadget to obtain precise insights about multiple health metrics.

neuroscience↗

Variability in the phytoplankton response to upwelling across an iron limitation mosaic within the California Current System

Coastal upwelling currents such as the California Current System (CCS) comprise some of the most productive biological systems on the planet. Diatoms, a distinct taxon of phytoplankton, dominate these upwelling events in part due to their rapid response to nutrient entrainment. In this region, they may also be limited by the micronutrient iron (Fe), an important trace element primarily involved in photosynthesis and nitrogen assimilation. The mechanisms behind how diatoms physiologically acclimate to the different stages of the upwelling conveyor belt cycle with respect to Fe limitation remains largely uncharacterized. Here, we explore their physiological and metatranscriptomic response to the upwelling cycle with respect to the Fe limitation mosaic that exists in the CCS. Subsurface, natural plankton assemblages that would potentially seed surface blooms were examined over wide and narrow shelf regions. The initial biomass and physiological state of the phytoplankton community had a large impact on the overall response to simulated upwelling. Following on-deck incubation under varying Fe physiological states, our results suggest that diatoms quickly dominated the blooms by "frontloading" nitrogen assimilation genes prior to upwelling. However, diatoms subjected to induced Fe limitation exhibited reductions in carbon and nitrogen uptake and decreasing biomass accumulation. Simultaneously, they exhibited a distinct gene expression response which included increased expression of Fe-starvation induced proteins and decreased expression of nitrogen assimilation and photosynthesis genes. These findings may have significant implications for upwelling events in future oceans, where changes in ocean conditions are projected to amplify the gradient of Fe limitation in coastal upwelling regions.

plant biology↗

Organic matter degradation in the deep, sulfidic waters of the Black Sea: Insights into the ecophysiology of novel anaerobic bacteria

Our knowledge about the physiology of deep sea (>1,000 m) microorganisms involved in organic matter (OM) degradation is still scare due to the lack of available isolates, especially from sulfidic environments. In this study, we successfully cultivated and characterized the physiology of a wide range of novel piezotolerant anaerobic bacteria affiliated with the phyla Fusobacteriota, Bacillota, Spirochaetota, Bacteroidota, Cloacimonadota, Planctomycetota, Mycoplasmatota and Chloroflexota involved in OM degradation in deep sulfidic waters of the Black Sea. The novel taxa are specialized in degrading specific types of OM and cover a wide range of physiological categories, including primary degraders, fermenters, and terminal oxidizers. This is the first report which demonstrates this for such a diverse physiological group from any sulfidic marine habitat. Collectively, this study provides a step forward in our understanding of the microbes thriving in the extreme conditions of the deep sulfidic waters of the Black Sea.

microbiology↗

NeuroMotion: Open-source Simulator with Neuromechanical and Deep Network Models to Generate Surface EMG signals during Voluntary Movement

Neuromechanical studies investigate how the nervous system interacts with the musculoskeletal (MSK) system to generate volitional movements. Such studies have been supported by simulation models that provide insights into variables that cannot be measured experimentally and allow a large number of conditions to be tested before the experimental analysis. However, current simulation models of electromyography (EMG), a core physiological signal in neuromechanical analyses, are mainly limited to static contractions and cannot fully represent the dynamic modulation of EMG signals during volitional movements. Here, we overcome these limitations by presenting NeuroMotion, an open-source simulator that provides a full-spectrum synthesis of EMG signals during voluntary movements. NeuroMotion is comprised of three modules. The first module is an upper-limb MSK model with OpenSim API to estimate the muscle fibre lengths and muscle activations during movements. The second module is BioMime, a deep neural network-based EMG generator that receives nonstationary physiological parameter inputs, such as muscle fibre lengths, and efficiently outputs motor unit action potentials (MUAPs). The third module is a motor unit pool model that transforms the muscle activations into discharge timings of motor units. The discharge timings are convolved with the output of BioMime to simulate EMG signals during the movement. Here we also provide representative applications of NeuroMotion. We first show how simulated MUAP waveforms change during different levels of physiological parameter variations and different movements. We then show that the synthetic EMG signals during two-degree-of-freedom hand and wrist movements can be used to augment experimental data for regression. Ridge regressors trained on the synthetic dataset were directly used to predict joint angles from experimental data. NeuroMotion is the first full-spectrum EMG generative model to simulate human forearm electrophysiology during voluntary hand, wrist, and forearm movements. All intermediate variables are available, which allows the user to study cause-effect relationships in the complex neuromechanical system, fast iterate algorithms before collecting experimental data, and validate algorithms that estimate non-measurable parameters in experiments. We expect this full-spectrum model will complement experimental approaches and facilitate neuromechanical research. Author summaryNeuromechanical studies investigate how the nervous system and musculoskeletal system interact to generate movements. Such studies heavily rely on simulation models, which provide non-measurable variables to complement the experimental analyses. However, the simulation models of surface electromyography (EMG), the core physiological signal widely used in neuromechanical analyses, are limited to static conditions. We bridged this gap by proposing NeuroMotion, the first full-spectrum EMG simulator that can be used to generate EMG signals during voluntary movements. NeuroMotion integrates a musculoskeletal model, a neural network-based EMG generator, and an advanced motoneuron model. With representative applications of this simulator, we show that it can be used to investigate the variabilities of EMG signals during voluntary movement. We also demonstrate that the synthetic signals generated by NeuroMotion can be used to augment experimental data for regressing joint angles. We expect the functionality provided by NeuroMotion, which is provided open-source, will stimulate progress in neuromechanics.

bioengineering↗

Intraneuronal binding of amyloid beta with reelin -implications for the onset of Alzheimer's disease

It was recently shown that in anteriolateral entorhinal cortex layer II neurons (ECLII neurons) in McGill-R-Thy1-APP homozygous transgenic rats (a model commonly used to study Alzheimers disease (AD)), the glycoprotein reelin and intracellular amyloid-{beta} (A{beta}) engage in a direct protein-protein interaction. Numerous studies of the human brain supported by experimental results from rodent and cell models point to a role for intracellular oligomeric A{beta} in the onset of AD. If reelin functions as a sink for intracellular A{beta} and if the binding to reelin makes A{beta} physiologically inert, it implies that reelin may prevent the neuron from being exposed to the detrimental effects typically associated with oligomeric A{beta}. Considering that reelin expression is extraordinarily high in the major subset of ECLII neurons compared to most other cortical neurons, such a protective role appears very difficult to reconcile with the fact that ECLII is clearly a major cradle for the onset of AD in humans. Here we show that this conundrum may be resolved if ECLII neurons have a much higher maximum production capacity of A{beta} than neurons expressing low levels of reelin. We provide a rationale for why this difference has evolved, and argue that the higher maximum production capacity of A{beta} in ECLII neurons may in a senescent A{beta}-inducing physiology predispose these neurons to initiate AD development. Author summaryAmyloid-{beta} is a small peptide that is widely recognized as one of the main culprits involved in the development of Alzheimers disease. It was recently shown that in the major subset of neurons in entorhinal cortex layer II, which expresses high levels of the protein reelin, amyloid-{beta} and reelin bind to each other. These neurons, which are strongly involved in memory formation, are among the first to die in subjects with Alzheimers disease. If intracellular amyloid-{beta}, which is clearly involved in the onset of the disease, becomes physiologically inert when it binds to reelin, it implies that reelin can prevent the neuron from being exposed to the detrimental effects of increased levels of amyloid-{beta}. Considering that reelin expression is extraordinarily high in ECLII neurons compared to most other cortical neurons, such a protective role appears very difficult to reconcile with the fact that ECLII constitute the predominant cortical site for initiation of Alzheimers disease. Here, we show that this paradox may be resolved if ECLII neurons have a much higher maximum amyloid-{beta} production capacity than neurons expressing low levels of reelin. We provide reasons why this difference has evolved and argue that it, in a senescent physiology, predisposes ECLII neurons to initiate the development of Alzheimers disease.

neuroscience↗

Arousal as a universal embedding for spatiotemporal brain dynamics

Neural activity in awake organisms shows widespread and spatiotemporally diverse correlations with behavioral and physiological measurements. We propose that this covariation reflects in part the dynamics of a unified, multidimensional arousal-related process that regulates brain-wide physiology on the timescale of seconds. By framing this interpretation within dynamical systems theory, we arrive at a surprising prediction: that a single, scalar measurement of arousal (e.g., pupil diameter) should suffice to reconstruct the continuous evolution of multidimensional, spatiotemporal measurements of large-scale brain physiology. To test this hypothesis, we perform multimodal, cortex-wide optical imaging and behavioral monitoring in awake mice. We demonstrate that spatiotemporal measurements of neuronal calcium, metabolism, and brain blood-oxygen can be accurately and parsimoniously modeled from a low-dimensional state-space reconstructed from the time history of pupil diameter. Extending this framework to behavioral and electrophysiological measurements from the Allen Brain Observatory, we demonstrate the ability to integrate diverse experimental data into a unified generative model via mappings from an intrinsic arousal manifold. Our results support the hypothesis that spontaneous, spatially structured fluctuations in brain-wide physiology--widely interpreted to reflect regionally-specific neural communication--are in large part reflections of an arousal-related process. This enriched view of arousal dynamics has broad implications for interpreting observations of brain, body, and behavior as measured across modalities, contexts, and scales.

neuroscience↗

Multicellular magnetotactic bacterial consortia are metabolically differentiated and not clonal

Consortia of multicellular magnetotactic bacteria (MMB) are currently the only known example of bacteria without a unicellular stage in their life cycle. Because of their recalcitrance to cultivation, most previous studies of MMB have been limited to microscopic observations. To study the biology of these unique organisms in more detail, we use multiple culture-independent approaches to analyze the genomics and physiology of MMB consortia at single cell resolution. We separately sequenced the metagenomes of 22 individual MMB consortia, representing eight new species, and quantified the genetic diversity within each MMB consortium. This revealed that, counter to conventional views, cells within MMB consortia are not clonal. Single consortia metagenomes were then used to reconstruct the species-specific metabolic potential and infer the physiological capabilities of MMB. To validate genomic predictions, we performed stable isotope probing (SIP) experiments and interrogated MMB consortia using fluorescence in situ hybridization (FISH) combined with nano-scale secondary ion mass spectrometry (NanoSIMS). By coupling FISH with bioorthogonal non-canonical amino acid tagging (BONCAT) we explored their in situ activity as well as variation of protein synthesis within cells. We demonstrate that MMB consortia are mixotrophic sulfate reducers and that they exhibit metabolic differentiation between individual cells, suggesting that MMB consortia are more complex than previously thought. These findings expand our understanding of MMB diversity, ecology, genomics, and physiology, as well as offer insights into the mechanisms underpinning the multicellular nature of their unique lifestyle. Significance statementThe emergence of multicellular lifeforms represents a pivotal milestone in Earths history, ushering in a new era of biological complexity. Because of the relative scarcity of multicellularity in the domains Bacteria and Archaea, research on the evolution of multicellularity has predominantly focused on eukaryotic model organisms. In this study, we explored the complexity of the only known bacteria without a unicellular stage in their life cycle, consortia of multicellular magnetotactic bacteria (MMB). Genomic and physiological analyses revealed that cells within individual MMB consortia are not clonal and exhibit metabolic differentiation. This implies a higher level of complexity than previously assumed for MMB consortia, prompting a reevaluation of the evolutionary factors that have led to the emergence of multicellularity. Because of their unique biology MMB consortia are ideally suited to become a model system to explore the underpinnings of bacterial multicellularity.

microbiology↗

Trade-off between light deprivation and desiccation in intertidal seagrasses due to periodic tidal inundation and exposure: insights from a data-calibrated model

Many seagrass species thrive in shallow intertidal zones globally, adapting to periodic tidal inundation and exposure with distinctive physiological traits and offering crucial ecosystem services. However, predicting the responses of intertidal seagrasses to external stressors is hampered by the complexity of the dynamic and harsh environments they occupy. Consequently, intertidal seagrass growth models, especially those incorporating dynamic physiological responses, are scarce in the literature. Our study comprehensively collated relevant data from the literature to parameterize the relationship between air exposure, seagrass leaf water content and photosynthetic efficiency to inform new growth rate functions for generalisable intertidal seagrass growth models. We tested the applicability of these model formulations for scenarios with varying physiological process assumptions, seagrass species, tidal conditions, meadow elevations and water turbidity. We found that neglecting air-exposed physiological responses (i.e., leaf water content loss and reduced photosynthetic efficiency) can substantially overestimate seagrass growth rates. We also observed a trade-off between light deprivation and desiccation on intertidal seagrass growth under specific tidal ranges and turbidity conditions. This can yield an "optimal" elevation where combined stressors of desiccation (increasing with meadow elevation) and light deprivation (decreasing with meadow elevation) are minimized. The predicted optimal elevation, i.e., the most suitable habitat for intertidal seagrass, moves upward as water turbidity increases. Our study provides both conceptual and quantitative guidance for ecological modellers to include air exposure responses of intertidal seagrasses in coastal ecosystem models. The model also helps to evaluate the viability of intertidal seagrass habitats and inform site selection for seagrass restoration.

ecology↗

Pressure-Driven Insulin Release Overcomes Limitations of Diffusion for Encapsulated Islet Cell Therapy

Cadaveric islet and stem cell-derived transplantations hold promise as treatments for type 1 diabetes. To tackle the issue of immunocompatibility, numerous cellular macroencapsulation techniques have been developed that utilize diffusion to transport insulin across an immunoisolating barrier. However, despite several devices progressing to human clinical trials, none have successfully managed to attain physiologic glucose control or insulin independence. Based on empirical evidence, macroencapsulation methods with multilayered, high islet surface density are incompatible with homeostatic, on-demand insulin delivery and physiologic glucose regulation, when reliant solely on diffusion. An additional driving force is essential to overcome the distance limit of diffusion. In this study, we present both theoretical proof and experimental validation that applying pressure at levels comparable to physiological diastolic blood pressure significantly enhances insulin flux across immunoisolation membranes--increasing it by nearly three orders of magnitude. This significant enhancement in transport rate allows for precise, sub-minute regulation of both bolus and basal insulin delivery. By incorporating this technique with a pump-based extravascular system, we demonstrate the ability to rapidly reduce glucose levels in diabetic rodent models, effectively replicating the timescale and therapeutic effect of subcutaneous insulin injection or infusion. This advance provides a potential path towards achieving insulin independence with islet macroencapsulation. One Sentence SummaryTowards improved glucose control, applying sub-minute pressure at physiological levels enhances therapeutic insulin transport from macroencapsulated islets.

bioengineering↗

The Impact of Anesthesia on Ultrasonic Glymphatic Perturbation Protocol: Alertness, and Glymphatic Influx

We have recently discovered that transcranial low-intensity focused ultrasound can enhance glymphatic transport, which facilitates the removal of waste metabolites from the brain in a preclinical rat model [1]. The central hypothesis was that ultrasound, functioning as a pressure wave, has the potential to influence the convective forces generated by arterial pulsations, which are also pressure waves, serving as the primary mechanism for glymphatic transport. Importantly, our data revealed that (i) the ultrasound protocol (650 kHz at 0.2MPa for 10 minutes to the entire brain) is safe, as histological evaluations showed no parenchymal damage and no difference in levels of neuronal degeneration or astrocytic activation 72 hours after the intervention, and (ii) the required pressure is significantly low, 10 times below FDA-approved limits for diagnostic ultrasound, and can be achieved using existing FDA-approved clinical transcranial focused ultrasound systems, suggesting its ease of translation into clinical applications. However, the study was conducted under specific physiological states with approximately 2.5% isoflurane-induced anesthesia. There is a limitation in fully understanding the potential bioeffects of ultrasound within the glymphatic space across various physiological conditions, primarily because the glymphatic transports efficiency fluctuates with anesthetically induced physiological states. Hence, establishing standardized protocols of ultrasonic glymphatic transport at optimal physiological state is crucial for ensuring consistent, reliable results across research laboratories during the preclinical development of this technique. The primary objective of this study is to evaluate how ultrasonically manipulated glymphatic transport is influenced by different levels of isoflurane-induced anesthetic conditions, including 3% (just above 2.5%), 2% (slightly below 2.5%), and 1.5% (quasi-awake state, resembling the existing clinical practice of ultrasound treatment). Results show that the impact of ultrasound during glymphatic transport depends on the level of anesthesia. It increases alertness in lightly anesthetized animals and improves glymphatic transport, while it induces drowsiness in heavily anesthetized animals, leading to reduced glymphatic transport. The results suggest that lighter anesthesia is beneficial for efficient ultrasonic glymphatic transport, making it more in line with the awake state in current clinical ultrasound treatments, thus advancing the technology closer to clinical translation.

bioengineering↗