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	<title>Cardiff University Archives - BRACE Alzheimer&#039;s Research</title>
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	<title>Cardiff University Archives - BRACE Alzheimer&#039;s Research</title>
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		<title>Prof Nick Allen, Prof Derek Blake &#038; Dr Adrian Waite &#8211; Cardiff University</title>
		<link>https://www.alzheimers-brace.org/cardiff-university-prof-nick-allen-prof-derek-blake-dr-adrian-waite/</link>
		
		<dc:creator><![CDATA[admin]]></dc:creator>
		<pubDate>Mon, 06 Feb 2017 11:49:00 +0000</pubDate>
				<category><![CDATA[Cardiff University]]></category>
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					<description><![CDATA[<p>Using stem cells to model protein quality control dysfunction in dementia.</p>
<p>The post <a href="https://www.alzheimers-brace.org/cardiff-university-prof-nick-allen-prof-derek-blake-dr-adrian-waite/">Prof Nick Allen, Prof Derek Blake &#038; Dr Adrian Waite &#8211; Cardiff University</a> appeared first on <a href="https://www.alzheimers-brace.org">BRACE Alzheimer&#039;s Research</a>.</p>
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			<span class="fl-heading-text">Prof Nick Allen, Prof Derek Blake & Dr Adrian Waite</span>
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			<span class="fl-heading-text">Pilot Project: Cardiff University, 2017</span>
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	<p>Using stem cells to model protein quality control dysfunction in dementia (Pilot Project)</p>
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	<p><span style="color: #000080;"><em>See glossary at bottom of page for definition of underlined words.</em></span></p>
<p><strong>Summary</strong></p>
<p>The <a href="https://www.alzheimers-brace.org/cardiff-university-prof-nick-allen-dr-adrian-waite#proteostasis">proteostasis network</a> (PN) is responsible for the ‘quality control’ of proteins produced by the cell. The breakdown of the PN may lead to the build up of toxic proteins which is characteristic of most forms of dementia. Ubiquilin-2 is a protein which has been shown to be mutated in sufferers of X-linked fronto-temporal dementia and is thought to be required for the normal functioning of the PN. Using induced pluripotent stem cells (iPSCs), this group seeks to characterise the role of Ubiquilin-2 in the PN of human brain cells. This research will provide the basis for understanding why certain genes (such as the one that codes for Ubiquilin-2) increase the risk of dementia and how they can be targeted to produce new therapeutic treatments.</p>
<p>&nbsp;</p>
<p><strong>What do we already know?</strong></p>
<p>Maintenance of functional proteins is vital for cell survival, and the mechanisms responsible for this are collectively known as the <a href="https://www.alzheimers-brace.org/cardiff-university-prof-nick-allen-dr-adrian-waite#proteostasis">proteostasis network</a> (PN).  This network is a collection of over 1000 proteins that co-ordinate processes such as <a href="https://www.alzheimers-brace.org/cardiff-university-prof-nick-allen-dr-adrian-waite#proteinsynthesis">protein synthesis</a>, <a href="https://www.alzheimers-brace.org/cardiff-university-prof-nick-allen-dr-adrian-waite#folding">folding</a> and degradation.  The PN is able to adapt to environmental stresses, however disease, genetic variation and ageing can reduce the efficiency of this quality control network, leading to build up of toxic proteins (i.e. amyloid-β) and dementia.</p>
<p>Ubiquilin-2 is one protein involved, and the gene encoding this protein is mutated in X-linked fronto-temporal dementia (FTD). Prof. Blake and Dr Waite have previously shown that ubiquilin-2 associates with proteins involved in synaptic regulation and protein trafficking, which may explain why synaptic dysfunction has been reported in mouse models with ubiquitin-2 mutations. With Prof. Allen’s expertise in stem cell models of disease this research team will translate these previous findings into a novel disease-relevant cell model.</p>
<p>&nbsp;</p>
<p><strong>What is this project trying to find out?</strong></p>
<p>Current cell models investigating the role of ubiqilin-2 have yielded variable results due to their non-<a href="https://www.alzheimers-brace.org/cardiff-university-prof-nick-allen-dr-adrian-waite#physiological">physiological</a> design, therefore a more physiologically-relevant cell model is needed.  Enter induced pluripotent stem cells (iPSCs).  Stem cells are the most versatile cell type in the body, since they possess the capability to turn into any type of cell by switching the relevant genes on or off.  Our understanding of stem cells is quite substantial, and we can now control the types of cells they differentiate into (e.g. neurons).  In the early days of stem cell technology, these cells would have to be isolated from embryos or adult bone marrow (however the latter are limited in the number of cell types they can become).  However, recent major advances in genetics mean that we can now “reset” skin cells isolated from individuals and transform them into stem cells that are able to differentiate into neurons.  These types of stem cells are known as “induced pluripotent stem cells” (iPS cells for short) and can be used to create immortal cell lines from healthy and diseased individuals to study the differences between various cell types.</p>
<p>The overall aim of the study is to successfully generate of a human iPSC model of X-linked FTD (and a healthy control) to further characterise the role of ubiqulin-2 in the PN, and how it may be non-functional in FTD. These studies will help increase our understanding of the neuronal PN that is relevant to other forms of dementia such as Alzheimer’s disease and motor neuron disease.</p>
<p><strong>How do they do this?</strong></p>
<p>The cutting-edge gene editing technology (the <a href="https://www.alzheimers-brace.org/cardiff-university-prof-nick-allen-dr-adrian-waite#crispr">CRISPR-cas9</a> system) will be used to introduce the ubiquilin-2 mutation to a human iPSC line.  The cells will then be assessed for stem cell properties using imaging and <a href="https://www.alzheimers-brace.org/cardiff-university-prof-nick-allen-dr-adrian-waite#genotype">genotyping methods</a>.</p>
<p><strong>Why is it important?</strong></p>
<p>This validated iPSC editing protocol and the cell lines will be used for future projects modelling risk gene variants for other forms of dementia, ultimately untangling the effects of these gene variations and revealing new drug targets.</p>
<p><strong>Glossary</strong></p>
<p><u><a id="proteostasis"></a>Proteostasis network</u> – The network of processes in cells responsible for the synthesis of correctly functioning proteins.<br />
<u><a id="proteinsynthesis"></a>Protein synthesis</u> – The process responsible for the production (synthesis) of new proteins in cells. <u><br />
<a id="folding"></a>Folding (of a protein)</u> – Proteins consist of amino acids which are linked together in a specific sequence. Once the chain of amino acids has been formed the protein will ‘fold’ into its correct three dimensional structure.<u><br />
<a id="physiological"></a>Physiological</u> – The study of the various mechanisms and processes that occur within living systems. <u><br />
<a id="crispr"></a>CRISPR-cas9</u> – A cutting edge genome editing technique adapted from bacteria. This method allows cutting and splicing of DNA at specific positions on the gene.<u><br />
<a id="genotype"></a>Genotyping methods</u> – Methods used to determine the differences in genetic make-up of an individual’s DNA sequence using biological assays.</p>
<p><strong>Further information</strong></p>
<p><a href="https://www.cardiff.ac.uk/people/view/61060-allen-nick">Please click here for more information about the work of Prof Nick Allen.</a></p>
<p><a href="https://www.cardiff.ac.uk/people/view/122804-blake-derek">Please click here for more information about the work of Prof Derek Blake.</a></p>
<p><a href="https://www.cardiff.ac.uk/people/view/644771-waite-adrian">Please click here for more information about the work of Dr Adrian Waite.</a></p>
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</div><p>The post <a href="https://www.alzheimers-brace.org/cardiff-university-prof-nick-allen-prof-derek-blake-dr-adrian-waite/">Prof Nick Allen, Prof Derek Blake &#038; Dr Adrian Waite &#8211; Cardiff University</a> appeared first on <a href="https://www.alzheimers-brace.org">BRACE Alzheimer&#039;s Research</a>.</p>
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		<title>Prof Alison Wray &#8211; Cardiff University</title>
		<link>https://www.alzheimers-brace.org/cardiff-university-prof-alison-wray/</link>
		
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		<pubDate>Tue, 26 Aug 2014 11:00:00 +0000</pubDate>
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		<guid isPermaLink="false">https://www.alzheimers-brace.org/?p=887</guid>

					<description><![CDATA[<p>Language differences as a risk for Alzheimer's disease.</p>
<p>The post <a href="https://www.alzheimers-brace.org/cardiff-university-prof-alison-wray/">Prof Alison Wray &#8211; Cardiff University</a> appeared first on <a href="https://www.alzheimers-brace.org">BRACE Alzheimer&#039;s Research</a>.</p>
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			<span class="fl-heading-text">Pilot Project: Cardiff University, 2014</span>
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	<p>Language differences as a risk for Alzheimer’s disease</p>
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	<p><strong>Scientific title:</strong> Linguistic markers of risk for future Alzheimer’s disease</p>
<p><strong>Type of project:</strong> Pilot study, with Professor Tess Fitzpatrick</p>
<p><strong>What do we already know?</strong></p>
<p>Previous research has shown that some people who develop Alzheimer’s disease in old age already have distinctive patterns in their language in early adulthood.</p>
<p><strong>What is this project trying to find out?</strong></p>
<p>This project aims to find out whether there are differences in the language of people at high and low genetic risk of developing Alzheimer’s disease in the future. Other biomarkers of risk (identified via brain scans, cerebral spinal fluid analysis, cognitive tests, etc.) will also be investigated to see if they correlate with any language differences.</p>
<p><strong>How will they do this?</strong></p>
<p>The data will come from unimpaired volunteers, aged 40-59, who are part of an existing research cohort for ‘PREVENT’ - a UK funded project that is collecting information about biomarkers and genetics in order to understand the risk factors for Alzheimer’s disease. Participants will provide written answers to questions and complete linguistic tasks via an online survey. Their answers will then be analysed to measure factors including grammatical complexity, vocabulary choices and the density of ideas in the text.</p>
<p><strong>Why is it important?</strong></p>
<p>If language is established to be an indicator of susceptibility to Alzheimer’s disease, it might in future be used for screening in place of more intrusive methods. Furthermore, if language processing behaviour is found to contribute causatively to risk of Alzheimer’s disease by influencing cognitive reserve, there is the possibility in future of developing preventative measures.</p>
<p><strong>Further information</strong></p>
<p><a class="externalLink" href="https://www.cardiff.ac.uk/people/view/99217-wray-alison" target="_blank" rel="noopener">Please click here for more information about the work of Professor Alison Wray</a></p>
<p><a class="externalLink" href="https://www.cardiff.ac.uk/people/view/99158-fitzpatrick-tess" target="_blank" rel="noopener">Please click here for more information about the work of Professor Tess Fitzpatrick</a></p>
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</div><p>The post <a href="https://www.alzheimers-brace.org/cardiff-university-prof-alison-wray/">Prof Alison Wray &#8211; Cardiff University</a> appeared first on <a href="https://www.alzheimers-brace.org">BRACE Alzheimer&#039;s Research</a>.</p>
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		<title>Dr Emma Kidd &#8211; Cardiff University</title>
		<link>https://www.alzheimers-brace.org/cardiff-university-dr-emma-kidd/</link>
		
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		<pubDate>Fri, 21 Feb 2014 11:00:00 +0000</pubDate>
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					<description><![CDATA[<p>Endocytosis and Alzheimer's disease</p>
<p>The post <a href="https://www.alzheimers-brace.org/cardiff-university-dr-emma-kidd/">Dr Emma Kidd &#8211; Cardiff University</a> appeared first on <a href="https://www.alzheimers-brace.org">BRACE Alzheimer&#039;s Research</a>.</p>
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			<span class="fl-heading-text">Research Programme: Cardiff University, 2014</span>
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	<p>Endocytosis and Alzheimer’s disease</p>
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	<p>In collaboration with Dr Rhian Thomas and Professor Mark Good.</p>
<p><strong>What are the aims of this group?</strong></p>
<p>Dr Kidd’s research concentrates on cellular and molecular pharmacology to understand more about the mechanisms underlying Alzheimer’s disease, with the ultimate aim of developing new therapies for this condition.</p>
<p><strong>What do we already know?</strong></p>
<p>Alzheimer’s disease is likely to develop as a result of many contributing factors. The main risk factor is increasing age, but we still do not understand how this leads to the disease.</p>
<p>Endocytosis is the process whereby cells actively take up items from their surrounding environment. Changes in endocytosis occur in Alzheimer’s disease – the process is central to the production of amyloid-β, the main component of the amyloid plaques found in the brains of Alzheimer’s patients. These changes have been identified in patients’ brains and also as susceptibility genes which give a small, increased risk of developing Alzheimer’s disease.</p>
<p><strong>What are they trying to find out?</strong></p>
<p>Dr Kidd’s group have been looking at how changing the expression of endocytic proteins affects cellular processes and may therefore contribute to the development of Alzheimer’s disease. They have shown that altering proteins involved in each of the two main types of endocytosis (clathrin-dependent and caveolin-dependent) has contrasting effects on the levels of a number of proteins implicated in the pathogenesis of Alzheimer’s disease.</p>
<p>They have also been examining how the expression of endocytic proteins is affected by ageing in mouse and human brains, to see if changes in the expression of these proteins may predispose individuals to Alzheimer’s disease. They have found that clathrin levels are increased in cognitively healthy older men (aged 70-85) compared to young (aged 20-30) and middle-aged men (aged 40-50). Interestingly, no changes were seen in clathrin levels in mice of different ages. They will go on to compare these results to those using tissue from people with Alzheimer’s disease.</p>
<p><strong>How do they do this?</strong></p>
<p>The group uses a variety of human cell lines, animal models and human tissue and many biochemical and molecular biological techniques to investigate cell function.</p>
<p><strong>Why is it important?</strong></p>
<p>Understanding more about how manipulations of endocytosis can affect key proteins in Alzheimer’s disease is critical to elucidating how the disease could be caused. The group’s findings have already suggested key parts of the pathways which could be altered in the disease and are helping to explain some of the genetic susceptibility data. Furthermore, their research could identify novel targets which could be used to develop new drugs to treat Alzheimer’s disease.</p>
<p>The work on ageing is novel with the potential to highlight stages in the lifespan of man when therapeutic interventions would be beneficial to slow or halt the development of Alzheimer’s disease. Interestingly, their data show clearly that there are differences between humans and mouse models of Alzheimer’s disease, which has important implications for further research in this field which is heavily dependent on mouse models.</p>
<p><strong>Further information</strong></p>
<p><a class="externalLink" href="https://www.cardiff.ac.uk/people/view/90847-kidd-emma" target="_blank" rel="noopener">Please click here for more information about the work of Dr Emma Kidd</a></p>
<p><a class="externalLink" href="https://www.cardiff.ac.uk/people/view/90861-thomas-rhian" target="_blank" rel="noopener">Please click here for more information about the work of Dr Rhian Thomas</a></p>
<p><a class="externalLink" href="http://psych.cf.ac.uk/contactsandpeople/academics/good.php" target="_blank" rel="noopener">Please click here for more information about the work of Professor Mark Good</a></p>
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</div><p>The post <a href="https://www.alzheimers-brace.org/cardiff-university-dr-emma-kidd/">Dr Emma Kidd &#8211; Cardiff University</a> appeared first on <a href="https://www.alzheimers-brace.org">BRACE Alzheimer&#039;s Research</a>.</p>
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		<title>Dr Claudia Metzler-Baddeley &#8211; Cardiff University</title>
		<link>https://www.alzheimers-brace.org/cardiff-university-dr-claudia-metzler-baddeley/</link>
		
		<dc:creator><![CDATA[admin]]></dc:creator>
		<pubDate>Thu, 21 Nov 2013 11:00:00 +0000</pubDate>
				<category><![CDATA[Cardiff University]]></category>
		<guid isPermaLink="false">https://www.alzheimers-brace.org/?p=990</guid>

					<description><![CDATA[<p>Obesity and dementia</p>
<p>The post <a href="https://www.alzheimers-brace.org/cardiff-university-dr-claudia-metzler-baddeley/">Dr Claudia Metzler-Baddeley &#8211; Cardiff University</a> appeared first on <a href="https://www.alzheimers-brace.org">BRACE Alzheimer&#039;s Research</a>.</p>
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			<span class="fl-heading-text">Dr Claudia Metzler-Baddeley</span>
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			<span class="fl-heading-text">Research Programme: Cardiff University, 2013</span>
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	<p>How do individual differences in midlife adiposity and APOE genotype as risk factors for dementia affect brain structure and cognition? A cross-sectional MRI study (Research fellowship jointly funded by the Alzheimer’s Society</p>
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	<p><span style="color: #000080;"><em>See glossary at bottom of page for definition of underlined words.</em></span></p>
<p><strong>Summary</strong></p>
<p>Obesity is known to be a <a href="https://www.alzheimers-brace.org/cardiff-university-dr-claudia-metzler-baddeley#riskfactor"><u>risk factor</u></a> for Alzheimer's disease and other dementia related diseases but it is not known why. This increased risk may be due to <a href="https://www.alzheimers-brace.org/cardiff-university-dr-claudia-metzler-baddeley#microstructural"><u>microstructural changes</u></a> in the fornix, a bundle of nerves connecting the hippocampus to other parts of the brain. In this project, MRI scans of participants (obese and normal weight) will be taken to look at the specific properties of nerve fibres in the fornix. This, coupled with neuropsychological tests and blood tests will allow a complete picture of the effect of obesity on dementia to be built up. This research may help identify early warning signs of dementia years before the symptoms start to present themselves.</p>
<p><strong>What do we already know?</strong></p>
<p>Dementia and obesity are amongst the largest public health problems in the Western World. There is accumulating evidence that being overweight in midlife increases the risk of developing dementia later, but it is not known why. This group has recently found evidence that being overweight is linked to <a href="https://www.alzheimers-brace.org/cardiff-university-dr-claudia-metzler-baddeley#microstructural">microstructural changes</a> of the fornix, a bundle of nerves connecting the hippocampus to other parts of the brain. The hippocampus is a brain area which has roles in learning and memory, and is affected early in Alzheimer’s disease. The relationship between variation in midlife body fat and changes in brain structure is not well understood and it remains unclear whether genetic risk for dementia influences this link.</p>
<p><strong>What is this project trying to find out?</strong></p>
<p>This project is studying how obesity and genetic risk of dementia (carrying <a href="https://www.alzheimers-brace.org/cardiff-university-dr-claudia-metzler-baddeley#apoe">APOE ε4</a>) affect brain structure and mental functions in midlife, many years before dementia symptoms develop.</p>
<p><strong>How will they do this?</strong></p>
<p>Body mass index and measurement of abdominal fat tissue using MRI scans will be used to categorise subjects into the groups lean, overweight and obese. Subjects will be screened for their APOE genotype, to determine their genetic risk of developing Alzheimer’s disease. MRI scans will be taken to look at the structure of the brain, including specific properties of nerve fibres of the fornix. Mental functions including memory, attention and problem solving – known to be affected in APOE ε4 carriers and late onset Alzheimer’s disease - will also be performed to test the functional significance of potential brain changes. Finally participants’ bloods will be analysed for markers of inflammation and hormonal changes that may inform about the potential mechanisms underpinning the link between obesity and brain health.</p>
<p><strong>Why is it important?</strong></p>
<p>The results of this study will aid our understanding of brain changes across the lifetime that may contribute to the development of dementia in older age. It may also contribute to identifying early warning signs many years before the onset of any clinical symptoms at an age where disease prevention is most promising. If we know how being overweight can increase the risk of dementia, this means we may be able to target this link in future to help prevent dementia.</p>
<p><strong>Glossary</strong></p>
<p><u><a id="riskfactor"></a>Risk factor</u> – Behaviours that may increase your chances of getting a disease.<br />
<u><a id="microstructural"></a>Microstructural changes</u> – Changes on the very small scale (eg. the micrometre scale)<br />
<u><a id="apoe"></a>APOE ε4</u> – A version of the APOE gene which is associated with the increased risk of Alzheimer’s disease.</p>
<p><strong>Further information</strong></p>
<p><a class="externalLink" href="http://psych.cf.ac.uk/contactsandpeople/academics/metzler.php" target="_blank" rel="noopener">Please click here for more information about the work of  Dr Claudia Metzler-Baddeley</a></p>
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</div><p>The post <a href="https://www.alzheimers-brace.org/cardiff-university-dr-claudia-metzler-baddeley/">Dr Claudia Metzler-Baddeley &#8211; Cardiff University</a> appeared first on <a href="https://www.alzheimers-brace.org">BRACE Alzheimer&#039;s Research</a>.</p>
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