Jain K K
Jain PharmaBiotech, Bläsiring 7, CH-4057 Basel, Switzerland.
Pharmacogenomics. 2001 Feb;2(1):73-7. doi: 10.1517/14622416.2.1.73.
Cambridge Healthtech Institute's Third Annual Conference on Lab-on-a-Chip and Microarray technology covered the latest advances in this technology and applications in life sciences. Highlights of the meetings are reported briefly with emphasis on applications in genomics, drug discovery and molecular diagnostics. There was an emphasis on microfluidics because of the wide applications in laboratory and drug discovery. The lab-on-a-chip provides the facilities of a complete laboratory in a hand-held miniature device. Several microarray systems have been used for hybridisation and detection techniques. Oligonucleotide scanning arrays provide a versatile tool for the analysis of nucleic acid interactions and provide a platform for improving the array-based methods for investigation of antisense therapeutics. A method for analysing combinatorial DNA arrays using oligonucleotide-modified gold nanoparticle probes and a conventional scanner has considerable potential in molecular diagnostics. Various applications of microarray technology for high-throughput screening in drug discovery and single nucleotide polymorphisms (SNP) analysis were discussed. Protein chips have important applications in proteomics. With the considerable amount of data generated by the different technologies using microarrays, it is obvious that the reading of the information and its interpretation and management through the use of bioinformatics is essential. Various techniques for data analysis were presented. Biochip and microarray technology has an essential role to play in the evolving trends in healthcare, which integrate diagnosis with prevention/treatment and emphasise personalised medicines.
剑桥健康科技研究所举办的第三届芯片实验室与微阵列技术年度会议涵盖了该技术的最新进展及其在生命科学中的应用。会议亮点将简要报道,重点是在基因组学、药物发现和分子诊断方面的应用。由于微流控技术在实验室和药物发现中的广泛应用,因此受到了重点关注。芯片实验室在一个手持微型设备中提供了完整实验室的功能。几种微阵列系统已用于杂交和检测技术。寡核苷酸扫描阵列为核酸相互作用分析提供了一种多功能工具,并为改进基于阵列的反义治疗研究方法提供了一个平台。一种使用寡核苷酸修饰的金纳米颗粒探针和传统扫描仪分析组合DNA阵列的方法在分子诊断中具有相当大的潜力。讨论了微阵列技术在药物发现高通量筛选和单核苷酸多态性(SNP)分析中的各种应用。蛋白质芯片在蛋白质组学中具有重要应用。鉴于使用微阵列的不同技术产生了大量数据,显然通过生物信息学来读取信息及其解释和管理至关重要。会上介绍了各种数据分析技术。生物芯片和微阵列技术在不断发展的医疗保健趋势中起着至关重要的作用,这些趋势将诊断与预防/治疗相结合,并强调个性化药物。