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Report on the “Advanced Big Data Training School for Life Sciences”, Barcelona 3th-7th September 2018 “生命科学高级大数据培训学校”报告,巴塞罗那,2018年9月3日至7日
Pub Date : 2019-02-05 DOI: 10.14806/EJ.24.0.917
Yen Hoang, J. Pfeil, Maja Zagorščak, Axel Thieffry, Eftim Zdravevski, Živa Ramšak, Petre Lameski, Sabrina K. Schulze, Eleni D Papakonstantinou, L. Papageorgiou, Tarry Singh, Ariel Duarte-López, M. Pérez-Casany
The “Advanced Big Data Training School for Life Sciences” took place during September 3-7, 2018, organized by the Data Management Group (DAMA-UPC) at the Technical University of Catalonia (UPC) in Barcelona, Spain. It is the follow-up training school of the first “Big Data Training School for Life Sciences”, held in Uppsala, Sweden, in September 2017, which was defined and structured at the “Think Tank Hackathon”, held in Ljubljana, Slovenia, in February 2018. The aim of this training school was to get participants acquainted with emerging Big Data processing techniques in the field of Computational Biology and Bioinformatics.This article explains in detail the development of the training school, the covered contents and the interaction of the participants within and out of the training event by the student, organizer and lecturer perspective.
“生命科学高级大数据培训学校”于2018年9月3日至7日在西班牙巴塞罗那的加泰罗尼亚技术大学(UPC)由数据管理小组(DAMA-UPC)组织。它是2017年9月在瑞典乌普萨拉举办的第一届“生命科学大数据培训学校”的后续培训学校,该培训学校是在2018年2月在斯洛文尼亚卢布尔雅那举行的“智库黑客马拉松”上确定和组织的。这所培训学校的目的是让参与者熟悉计算生物学和生物信息学领域新兴的大数据处理技术。本文从学员、组织者和讲师的角度详细阐述了培训学校的发展历程、涵盖的内容以及培训活动内外参与者的互动。
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引用次数: 0
Protein Spotlight 208 蛋白质聚焦208
Pub Date : 2019-01-31 DOI: 10.14806/EJ.24.0.924
EMBnet journal
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引用次数: 0
Protein Spotlight 206 蛋白质聚焦206
Pub Date : 2019-01-31 DOI: 10.14806/ej.24.0.923
EMBnet journal
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引用次数: 0
A genomic data mining pipeline for 15 species of the genus Olea. 油橄榄属15种基因组数据挖掘管道。
Pub Date : 2019-01-01 Epub Date: 2019-05-22 DOI: 10.14806/ej.24.0.922
Constantinos Salis, Eleni Papakonstantinou, Katerina Pierouli, Athanasios Mitsis, Lia Basdeki, Vasileios Megalooikonomou, Dimitrios Vlachakis, Marianna Hagidimitriou

In the big data era, conventional bioinformatics seems to fail in managing the full extent of the available genomic information. The current study is focused on olive tree species and the collection and analysis of genetic and genomic data, which are fragmented in various depositories. Extra virgin olive oil is classified as a medical food, due to nutraceutical benefits and its protective properties against cancer, cardiovascular diseases, age-related diseases, neurodegenerative disorders, and many other diseases. Extensive studies have reported the benefits of olive oil on human health. However, available data at the nucleotide sequence level are highly unstructured. Towards this aim, we describe an in-silico approach that combines methods from data mining and machine learning pipelines to ontology classification and semantic annotation. Fusing and analysing all available olive tree data is a step of uttermost importance in classifying and characterising the various cultivars, towards a comprehensive approach under the context of food safety and public health.

在大数据时代,传统的生物信息学似乎无法管理所有可用的基因组信息。目前的研究主要集中在橄榄树种类和遗传和基因组数据的收集和分析,这些数据分散在不同的存储库中。特级初榨橄榄油被归类为医疗食品,由于其营养价值和对癌症、心血管疾病、年龄相关疾病、神经退行性疾病和许多其他疾病的保护作用。大量研究报告了橄榄油对人体健康的益处。然而,在核苷酸序列水平上的可用数据是高度非结构化的。为了实现这一目标,我们描述了一种将数据挖掘和机器学习管道方法结合到本体分类和语义注释的计算机方法。在食品安全和公共卫生的背景下,融合和分析所有可用的橄榄树数据是对各种品种进行分类和表征的最重要的一步。
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引用次数: 0
NOTCH3 and CADASIL syndrome: a genetic and structural overview. NOTCH3和CADASIL综合征:遗传和结构综述。
Pub Date : 2019-01-01 Epub Date: 2019-05-22 DOI: 10.14806/ej.24.0.921
Eleni Papakonstantinou, Flora Bacopoulou, Dimitrios Brouzas, Vasileios Megalooikonomou, Domenica D'Elia, Erik Bongcam-Rudloff, Dimitrios Vlachakis

CADASIL syndrome is a rare disease that belongs to a group of disorders called leukodystrophies. It is well established that NOTCH3 gene on chromosome 19 is primarily responsible for the development of the CADASIL syndrome. Herein, an attempt is made to shed light on the actual molecular mechanism underlying CADASIL syndrome, through insights extracted from comprehensive evolutionary studies and in silico modelling on Notch 3 protein. In particular, we suggest the use of optical coherence tomography angiography for the detection of early signs of small vessel diseases, which are the major precursors to a repertoire of neurodegenerative conditions, including CADASIL.

CADASIL综合征是一种罕见的疾病,属于一组称为白细胞营养不良的疾病。众所周知,19号染色体上的NOTCH3基因主要负责CADASIL综合征的发展。在此,通过从全面的进化研究中提取的见解和对Notch 3蛋白的计算机建模,试图阐明CADASIL综合征的实际分子机制。特别是,我们建议使用光学相干断层扫描血管造影术来检测小血管疾病的早期迹象,这些疾病是包括CADASIL在内的一系列神经退行性疾病的主要前兆。
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引用次数: 0
Protein Spotlight 219 蛋白质聚焦219
Pub Date : 2019-01-01 DOI: 10.14806/EJ.25.0.938
EMBnet journal
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引用次数: 0
Protein Spotlight 204 蛋白质聚焦204
Pub Date : 2018-07-20 DOI: 10.14806/EJ.24.0.916
EMBnet journal
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引用次数: 0
Protein Spotlight 202 蛋白聚焦202
Pub Date : 2018-06-29 DOI: 10.14806/EJ.24.0.915
EMBnet journal
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引用次数: 0
Proceedings of the “Think Tank Hackathon’’, Big Data Training School for Life Sciences Follow-up, Ljubljana 6th – 7th February 2018 2018年2月6日至7日卢布尔雅那,生命科学后续大数据培训学校“智库黑客马拉松”会议纪要
Pub Date : 2018-04-18 DOI: 10.14806/EJ.24.0.912
Sabrina K. Schulze, Živa Ramšak, Yen Hoang, Eftim Zdravevski, J. Pfeil, Ariel Duarte-López, Uwe Baier, Maja Zagorščak
On 6 th and 7 th February 2018, a Think Tank took place in Ljubljana, Slovenia. It was a follow-up of the “Big Data Training School for Life Sciences” held in Uppsala, Sweden, in September 2017. The focus was on identifying topics of interest and optimising the programme for a forthcoming “Advanced” Big Data Training School for Life Science, that we hope is again supported by the COST Action CHARME (Harmonising standardisation strategies to increase efficiency and competitiveness of European life-science research - CA15110). The Think Tank aimed to go into details of several topics that were - to a degree - covered by the former training school. Likewise, discussions embraced the recent experience of the attendees in light of the new knowledge obtained by the first edition of the training school and how it comes from the perspective of their current and upcoming work. The 2018 training school should strive for and further facilitate optimised applications of Big Data technologies in life sciences. The attendees of this hackathon entirely organised this workshop.
2018年2月6日至7日,智库活动在斯洛文尼亚卢布尔雅那举行。这是2017年9月在瑞典乌普萨拉举办的“生命科学大数据培训学校”的后续活动。重点是确定感兴趣的主题,并为即将到来的“高级”生命科学大数据培训学校优化计划,我们希望再次得到成本行动CHARME(协调标准化战略以提高欧洲生命科学研究的效率和竞争力- CA15110)的支持。智库的目的是深入研究前培训学校在一定程度上涵盖的几个主题的细节。同样,讨论包含了与会者最近的经验,根据培训学校第一版获得的新知识,以及如何从他们当前和即将开展的工作的角度来看待这些知识。2018年培训学校应努力推动大数据技术在生命科学领域的优化应用。这次黑客马拉松的参加者完全组织了这次研讨会。
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引用次数: 1
Genomic big data hitting the storage bottleneck 基因组大数据遭遇存储瓶颈
Pub Date : 2018-04-18 DOI: 10.14806/EJ.24.0.910
L. Papageorgiou, Picasi Eleni, S. Raftopoulou, Meropi Mantaiou, V. Megalooikonomou, D. Vlachakis
During the last decades, there is a vast data explosion in bioinformatics. Big data centres are trying to face this data crisis, reaching high storage capacity levels. Although several scientific giants examine how to handle the enormous pile of information in their cupboards, the problem remains unsolved. On a daily basis, there is a massive quantity of permanent loss of extensive information due to infrastructure and storage space problems. The motivation for sequencing has fallen behind. Sometimes, the time that is spent to solve storage space problems is longer than the one dedicated to collect and analyse data. To bring sequencing to the foreground, scientists have to slide over such obstacles and find alternative ways to approach the issue of data volume. Scientific community experiences the data crisis era, where, out of the box solutions may ease the typical research workflow, until technological development meets the needs of Bioinformatics.
在过去的几十年里,生物信息学领域出现了巨大的数据爆炸。大数据中心正试图面对这一数据危机,达到高存储容量水平。尽管几位科学巨头研究了如何处理他们橱柜里的海量信息,但这个问题仍然没有解决。由于基础设施和存储空间问题,每天都有大量的信息永久丢失。测序的动机已经落后了。有时,用于解决存储空间问题的时间比用于收集和分析数据的时间要长。为了使测序成为前景,科学家们必须克服这些障碍,找到解决数据量问题的替代方法。科学界正在经历数据危机时代,在技术发展满足生物信息学的需求之前,开箱的解决方案可能会缓解典型的研究工作流程。
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引用次数: 42
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