bioRxiv Science⌕ Search

bioRxiv · 10.1101/2023.05.25.538223

FUNCTIONAL AGEING: A Science-Technology-Society Approach to teach Ageing and Age-related Diseases

Abstract

PurposeAgeing is a complex biological process that involves numerous genes and pathways. Experimental studies have identified several of these genes and pathways that that can extend or shorten an individuals lifespan. Understanding these genes and pathways can help develop interventions that improve health and quality of life of older people. Nonetheless, as the global population continues to age, it is essential to comprehend the ageing processs impact on society. Functional age is defined as a combination of chronological, biological, and psychological ages. An educational course called "Functional Ageing" was created for life science students at the National University of Singapore (NUS) during the academic year 2016-2017. The module adopted an interdisciplinary approach based on science-technology-society (STS) methodology and aimed to equip students with the analytical tools needed to assess the ageing process at both the molecular and physiological/functional levels. Ultimately, the module aimed to promote the understanding of ageing processes, particularly functional ageing in a population and its societal impacts. MethodsThis "Functional Ageing" course spanned over 13 weeks, consisting of weekly four-hour sessions that aimed to integrate both biology of ageing and societal perceptions of an ageing population. The first half of the semester covered the molecular processes that govern ageing, while the second half focussed on societal perception, burden of disease, healthy ageing interventions and creating an ageless society. Experimental and epidemiological studies were used to explain the ageing process. Expert guest lecturers were invited throughout the module to share their experiences on the demanding research areas of ageing today, as well as clinical aspects of age-related diseases. In addition, a field visit to a geriatric ward at the mental health organisation was arranged to showcase the countrys approach to dealing with the rising demands of ageing, and to provide experiential learning that can help inculcate a clearer public perception of ageing. ResultsThis 13-week module helped to improve students perception about functional ageing in todays society. After the module, a reflection analysis was conducted to evaluate students perceptions of ageing society. Overall findings garnered have demonstrated that while students generally have a brief understanding of the biological processes of ageing, their perception on how ageing is being manifested in a public health and societal setting is in paucity. However, the routine university-directed feedback survey indicated that the module had a positive impact on students appreciation and comprehension of the interplay between biological and sociological aspects of ageing, thus achieving the learning objectives of the module. ConclusionThe aim of the "Functional ageing" module was to integrate the biology and sociology of ageing to provide a better interdisciplinary understanding of ageing in society. After completing the module, students demonstrated a change in their mindset and attitude towards how their scientific understanding of ageing can be coupled to their public perception of ageing. As ageing populations become more prevalent in many societies, it is crucial that we prepare for an ageing population and develop a positive perception of ageing. Through educational efforts like this course/module, students will exhibit greater awareness of ageing issues, leading to more informed and balanced perceptions.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Hande, P., Ng, G., Rajeev, V., Selvaraji, S., Mallilankaraman, K.. 2023-05-26. FUNCTIONAL AGEING: A Science-Technology-Society Approach to teach Ageing and Age-related Diseases. https://doi.org/10.1101/2023.05.25.538223

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Evaluating Large Language Models as Tools to Navigate Researchers in Rapidly Evolving Research Landscapes: A Case Study in Cancer Drug Response Prediction

Large Language Models (LLMs) have emerged as promising tools for assisting researchers in automating and accelerating the synthesis of literature reviews. However, their reliability is a significant concern due to issues like factual inaccuracies and hallucinations. The key question is whether LLMs can reliably provide comprehensive, up-to-date overviews and analyses. This study evaluates the performance of three leading LLMs (OpenAI's ChatGPT, Google's Gemini, and DeepSeek) on the complex task of generating a comprehensive survey paper on deep learning for cancer Drug Response Prediction (DRP). By testing both standard and Deep Research (DR) / Deep Think (DT) modes of LLMs with prompts of varying detail, this paper assesses key academic dimensions, including reference management, content quality, and analytical depth. Key findings reveal that while DR modes of LLMs significantly improve reliability by eliminating hallucinations, performance variations exist across models and prompts. A trade-off between reference quantity and integration quality was observed, and even the best-performing models lacked the analytical depth of human experts, often requiring extensive human supervision. The study concludes that LLMs currently serve as powerful assistive tools but still cannot replace the critical validation and synthesis provided by human researchers. Choosing the best LLM to use depends on the task in hand, while several strategies can be implemented to improve the produced output.

scientific communication and education↗

An All-In-One Software Solution for Automated Processing of LA-ICP-TOF-MS datasets

LA-ICP-TOF-MS provides rapid, high resolution elemental analysis of biological and non-biological samples. However, accurate real-time data analysis frequently requires the user to account for several instrumental and experimental variables that can change during data acquisition. AutoSpect is a novel software tool designed to automate the processing and fitting of LA-ICP-TOF-MS data, addressing key challenges such as time-dependent spectral drift, instrument sensitivity drift calibration inaccuracies, and peak deconvolution, enabling researchers to rapidly and accurately process complex datasets. The tool is optimized to be robustly applicable across scientific fields (e.g., geochemistry, biology, and materials science), providing a streamlined solution for end users seeking to maximize the potential of LA-ICP-TOF-MS for high-resolution elemental mapping and isotopic analysis. Significance to JAASAnalysis of fast transient signals using laser ablation inductively coupled plasma time-of-flight mass spectrometry (LA-ICP-TOF-MS) has become mainstream for elemental mapping. Advancements in LA-ICP-TOF-MS technology continue to accelerate the collective understanding of the role inorganic chemistry plays in dynamic processes. To ensure accurate quantitative results, the vast amount of complex spectral data generated requires elegant solutions to perform a variety of functions including data partitioning, peak fitting, drift correction, mass-to-charge calibration, peak profiling, and spectral fitting. AutoSpect is an all-in-one software solution that provides high level automation with a user-friendly graphical interface to perform complex data analyses for ICP-TOF-MS datasets.

scientific communication and education↗

Could instructor talk drive CURE effectiveness? A comparative study of instructor talk in introductory lab courses

Course-based undergraduate research experiences (CUREs) are thought to enhance students motivation to continue in college, in science, and in research. Yet, how CUREs enhance student motivation is largely undefined. Theories of instructor immediacy, self-efficacy, and task values suggest that CURE instructors may talk in ways that influence students motivational beliefs. We characterized the non-content related talk of instructors teaching 48 introductory biology lab courses, half CUREs and half non-CUREs. We identified 14 types of instructor talk that fit these theoretical perspectives: fostering students closeness with their instructor (i.e., immediacy talk), building students confidence in their scientific abilities (i.e., self-efficacy talk), and promoting students sense of worth in their work (i.e., task value talk). Course type had a medium effect on talk type, with CURE instructors utilizing more immediacy, self-efficacy, and task values talk than non-CURE instructors but also showing more variation in these types of talk. Our results suggest that motivation-related instructor talk is more prevalent in CUREs than non-CUREs, but wide variation in CURE instructor talk indicates additional investigation is needed before non-content talk can be considered a mechanism for the motivational influences of CUREs. HIGHLIGHTThis study compares non-content instructor talk in CURE and non-CURE lab courses using immediacy, self-efficacy, and task value theories. CURE instructors use more talk than non-CURE instructors, but variation in CURE instructor talk leaves open the question of whether talk is a causal factor in the motivational influence of CURE instruction.

scientific communication and education↗