How Memories Are Made And Lost In The Brain – Professor Don Kulasiri, Lincoln University
Original Article Reference
This SciPod is a summary of the papers ‘Modelling the dynamics of CaMKII–NMDAR complex related to memory formation in synapses: The possible roles of threonine 286 autophosphorylation of CaMKII in long term potentiation’, published in the Journal of Theoretical Biology, DOI:10.1016/j.jtbi.2014.11.001; ‘Modelling bidirectional modulations in synaptic plasticity: A biochemical pathway model to understand the emergence of long term potentiation (LTP) and long term depression (LTD)’, published in the Journal of Theoretical Biology, DOI:10.1016/j.jtbi.2016.05.015; and ‘Computational investigation of Amyloid-β-induced location- and subunit-specific disturbances of NMDAR at hippocampal dendritic spine in Alzheimer’s disease’, published in the journal PLOS ONE, DOI:10.1371/journal.pone.0182743.
Share Episode
About this episode
Our brain forms long-term memories and stores information through synaptic plasticity, the ability of the connections between neurons to be strengthened or weakened over time. However, the exact methods through which synaptic plasticity is achieved by the brain remain largely unknown in the scientific community. Professor Don Kulasiri at Lincoln University, New Zealand, is using a mathematical modelling approach to shed light into this process. His findings are providing molecular insights into how memories can be strengthened or lost.
This work is licensed under a Creative Commons Attribution 4.0 International License. 
What does this mean?
Share: You can copy and redistribute the material in any medium or format
Adapt: You can change, and build upon the material for any purpose, even commercially.
Credit: You must give appropriate credit, provide a link to the license, and indicate if changes were made.
Related episodes
Dr. Daniel Kroeger | Sleeping More Than Ever Before: The Surprising Science of Extra Sleep and Anxiety
For centuries, sleep has remained one of humanity’s greatest biological mysteries. We spend roughly a third of our lives doing it, yet scientists are still trying to fully understand why the brain insists upon sleep. It seems clear that sleep restores the body, sharpens memory, regulates emotions, and keeps countless internal systems in balance. But one major problem has always complicated sleep research: most experiments focus on what happens when sleep is taken away. That approach has taught researchers a great deal. Sleep deprivation has been linked to poor concentration, weakened immune function, emotional instability, and a long list of health problems. Yet asking what happens when sleep is removed only tells part of the story. It is a little like studying hunger by starving people without ever exploring what happens when they are exceptionally well fed.
Prof. Megan Lancaster | The Hidden Signals of the Heart: How Genetics Is Transforming the Fight Against Sudden Cardiac Death
The human heart beats with a rhythm so steady that most of us rarely stop to consider it. Each pulse carries oxygen, sustains life, and quietly reflects the intricate biological systems that keep us alive. However, this familiar rhythm requires a delicate electrical balance. When that balance is disturbed, the consequences can be sudden and severe. Among the most striking examples is Long QT syndrome, a condition that can lurk silently until it triggers a dangerous arrhythmia or even sudden cardiac death.
Prof. Jullie Pan | The Brain’s Hidden Chemistry: What the Hippocampus Reveals About Memory, Energy, and Disease
The human brain is often described as one of the most complex objects in the known universe. Yet even within this astonishing organ, a small curved structure deep in the temporal lobe has drawn extraordinary scientific attention for decades. This structure, the hippocampus, plays a central role in memory formation, learning, emotional processing, and spatial navigation. It is also one of the brain regions most vulnerable to disease.
The Translational Asian Age-related Macular Degeneration Program Phase 2 (TAAP-2): Reimagining the Future of Vision Care
Age-related macular degeneration, often abbreviated as AMD, is one of the leading causes of vision loss among older adults worldwide. In Asia, where populations are ageing rapidly, its impact is particularly profound. For many, the disease quietly erodes central vision, making everyday activities such as reading, driving, and recognising faces increasingly difficult. Against this backdrop, the Translational Asian Age-related Macular Degeneration Programme, or TAAP for short, has emerged as a bold and ambitious effort to confront the disease head-on. Now in its second phase, TAAP-2 represents a significant evolution in both scientific scope and clinical ambition.
Increase the impact of your research
Step 1 Upload your science paper
Step 2 SciPod script written
Step 3 Voice audio recorded
Step 4 SciPod published



