bioRxiv Science⌕ Search

Biology subjects

Kaikkonen, L.

Publications and source records attributed to Kaikkonen, L..

3 recordsLinked to original sources

Probabilistic ecological risk assessment for deep-sea mining: a Bayesian Network for Chatham Rise, SW Pacific Ocean

Increasing interest in seabed resource use in the ocean is introducing new pressures on deep-sea environments, the ecological impacts of which need to be evaluated carefully. The complexity of these ecosystems and the dearth of comprehensive data pose significant challenges to predicting potential impacts. In this study, we demonstrate the use of Bayesian Networks (BNs) as a modelling framework to address these challenges and enhance the development of robust quantitative predictions concerning the effects of human activities on deep-seafloor ecosystems. The approach consists of iterative model building with experts, and quantitative probability estimates of the relative decrease in abundance of different functional groups of benthos following seabed mining. The model is then used to evaluate two alternative seabed mining scenarios to identify the major sources of uncertainty associated with the mining impacts. By establishing causal connections between the pressures associated with potential mining activities and various components of the benthic ecosystem, our model offers an improved comprehension of potential impacts on the seafloor environment. We illustrate this approach using the example of potential phosphorite nodule mining on the Chatham Rise, offshore Aotearoa/New Zealand, SW Pacific Ocean, and examine ways to incorporate knowledge from both empirical data and expert assessments into quantitative risk assessments. We further discuss how ecological risk assessments can be constructed to better inform decision-making, using metrics relevant to both ecology and policy. The findings from this study highlight the valuable insights that BNs can provide in evaluating the potential impacts of human activities. However, continued research and data collection are crucial for refining and ground truthing these models and improving our understanding of the long-term consequences of deep-sea mining and other anthropogenic activities on marine ecosystems. By leveraging such tools, policymakers, researchers, and stakeholders can work together towards human activities in the deep sea that minimise ecological harm and ensure the conservation of these environments.

ecology↗

α-Melanocyte-Stimulating Hormone Regulates Pathological Cardiac Remodeling by Activating Melanocortin 5 Receptor in Cardiomyocytes

Background-Melanocyte-stimulating hormone (-MSH) regulates diverse physiological functions by activating melanocortin receptors (MC-R). -MSH is predominantly expressed in the pituitary gland, but it is also found in several peripheral tissues such as the skin and heart. However, the role of -MSH and its possible target receptors in the heart remain completely unknown. Therefore, we sought to investigate whether -MSH could be involved in the regulation of pathological cardiac remodeling. MethodsTissue -MSH concentrations and the effects of chronic -MSH administration were investigated in mice subjected to transverse aortic constriction (TAC). Rat H9c2 cells, neonatal mouse ventricular myocytes and human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CM) were used to study the effects of -MSH and selective MC-R agonists. Inducible cardiomyocyte-specific melanocortin 5 receptor (MC5-R) knockout mouse model was engineered to investigate the role of MC5-R in cardiac hypertrophy. Results-MSH was highly expressed in the mouse heart, particularly in the ventricles, and its level was reduced in the left ventricles of TAC-operated mice. Administration of a stable -MSH analogue protected mice against TAC-induced cardiac hypertrophy and systolic dysfunction. In vitro experiments revealed that cardiomyocytes serve as effector cells for the -MSH mediated antihypertrophic signaling and that selective activation of MC5-R mimics the actions of -MSH. In keeping with these findings, MC5-R was downregulated in the failing mouse heart and stressed hiPSC-CMs. Silencing of MC5-R in mouse cardiomyocytes induced hypertrophy and fibrosis markers in vitro and aggravated TAC-induced cardiac hypertrophy and fibrosis in vivo. Conversely, pharmacological activation of MC5-R improved systolic function and reduced cardiac fibrosis in TAC-operated mice. Conclusions-MSH is expressed in the heart and protects against pathological cardiac remodeling by activating MC5-R in cardiomyocytes. These results suggest that analogues of naturally occurring -MSH, that have been recently approved for clinical use and have agonistic activity at MC5-R, may be of benefit in treating heart failure.

physiology↗

Causal approach to environmental risks of seabed mining

Seabed mining is approaching the commercial mining phase across the worlds oceans. This rapid industrialization of seabed resource use is introducing new pressures to marine environments. The environmental impacts of such pressures should be carefully evaluated prior to permitting new activities, yet observational data is mostly missing. Here, we examine the environmental risks of seabed mining using a causal, probabilistic network approach. Drawing on a series of interviews with a multidisciplinary group of experts, we outline the cause-effect pathways related to seabed mining activities to inform quantitative risk assessments. The approach consists of (1) iterative model building with experts to identify the causal connections between seabed mining activities and the affected ecosystem components, and (2) quantitative probabilistic modelling to provide estimates of mortality of benthic fauna in the Baltic Sea. The model is used to evaluate alternative mining scenarios, offering a quantitative means to highlight the uncertainties around the impacts of mining. We further outline requirements for operationalizing quantitative risk assessments, highlighting the importance of a cross-disciplinary approach to risk identification. The model can be used to support permitting processes by providing a more comprehensive description of the potential environmental impacts of seabed resource use, allowing iterative updating of the model as new information becomes available.

ecology↗