A rapid, POC array MDR/XDR-TB genotyping.
A rapid, POC array MDR/XDR-TB genotyping.
批准号:
7538498
负责人:
Heather Koshinsky
金额:
$29.32万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-07-22 至 2009-11-30
关键词:
Accident and Emergency departmentAllelesAreaBindingBiological AssayBiological ProductsBusinessesCellsCharacteristicsClinicClinicalColorCommitConditionConserved SequenceCountryDNAData CollectionDetectionDevelopmentDiagnosisDiagnosticDiagnostic ProcedureDiagnostic testsDiscriminationDisease ManagementDisruptionDrug Resistant TuberculosisDrug resistanceDyesElementsEvaluationExtreme drug resistant tuberculosisGenesGenomicsGenotypeGoalsGovernmentHourHybridsImmigrationInternationalLeadLifeLinkMethodsMicroscopyMissionMulti-Drug ResistanceMultidrug-Resistant TuberculosisMutationMutation DetectionMycobacterium tuberculosisNucleic AcidsPatientsPeptide Nucleic AcidsPersonsPharmaceutical PreparationsPoultry DiseasesPreventionProtocols documentationPublic HealthPurposeReactionResearchResourcesSamplingSchemeSensitivity and SpecificitySolutionsSpecificitySputumSupport of ResearchSurfaceSystemTechniquesTechnologyTemperatureTestingTravelTuberculosisUnited StatesUnited States National Institutes of HealthUnited States Public Health ServiceVisitVisualWeekbaseburden of illnessdeoxyhypusine synthasedesignemergency service respondergenotyping technologyhuman diseaseimprovedinnovationinterestnucleic acid detectionpoint of carepromotersuccesstheoriestransmission process
中文摘要
描述(由申请人提供):结核病的诊断是全球结核病控制的主要薄弱环节。耐药结核病加重了诊断和治疗方面的挑战。使用最广泛的诊断检测是痰涂片镜检,这一检测方法繁琐、不敏感,涉及多次患者就诊,而且不能发现多药或广泛耐药(MDR/XDR-TB)。痰培养费用昂贵,根据所使用的方法,需要4-8周才能获得结果,最多需要16周才能发现耐多药/广泛耐药结核病。因此,迫切需要一种简单、快速的诊断测试,以确定结核分枝杆菌(MTB)的存在,并进行耐多药/广泛耐药基因分型,这些测试可在患者等待期间在公共卫生诊所进行。该项目的长期目标是开发一种可在医疗点使用的MTB鉴定和MDR/XDR-TB基因分型检测方法。Investigen的“smartDNATM技术”使DNA检测能够在室温下在均质溶液中快速进行,并具有比色读出。smartDNA MTB鉴定试验包括:(1)常规痰液处理,(2)样品破坏,(3)通过肽核酸(PNA)微粒捕获MTB靶标,以及(4)通过第二种(检测)PNA- dna靶标结合染料的“光激活”颜色变化进行检测。Investigen计划将基于智能dna的检测扩展到MDR/XDR- TB基因分型。拟议的MTB鉴定和MDR/XDR-TB基因分型方案包括(1)常规痰液处理,(2)样品破坏,(3)在每个感兴趣的靶标区域捕获MTB保守序列的PNA-微粒富集,(4)将富集捕获的靶标与等位基因特异性PNA阵列元素的序列特异性结合,以及(5)使用smartDNA检测产生的PNA- dna杂交。POC智能dna MDR/XDR-TB基因分型技术的成功开发需要:(1)设计用于MDR/XDR-TB相关突变的捕获、检测和等位基因识别的探针装置;(2)找到一种实用的方法,将智能dna染料变色反应应用于结合在平面上的PNA-DNA杂交体。有三个具体目标。(1)证明该系统在区分结核分枝杆菌基因组DNA单碱基变化方面的实用性。(2)设计检测突变的探针组。(3)在PNA阵列上开发smartDNA读出。基于smartdna的MDR/XDR- TB基因分型检测将极大地改善MTB的诊断和治疗状况,因此,与NIH通过支持研究改善人类疾病的诊断、预防和治疗来减轻疾病负担的使命相关。虽然美国在发现、治疗和控制结核病方面取得了很大成功,但在许多国家,结核病、耐多药结核病和广泛耐药结核病是一个严重且日益严重的公共卫生问题;国际旅行和移民增加了传播。该项目即将完成的研究预计将导致结核病、耐多药结核病和广泛耐药结核病识别系统的发展,该系统将在患者等待期间提供结果,并可在世界各地资源有限的环境中使用,在美国的诊所和急诊室,甚至可能在美国边境,极大地帮助公共卫生服务部门检测、治疗和控制结核病、耐多药结核病和广泛耐药结核病。
英文摘要
DESCRIPTION (provided by applicant): The diagnosis of tuberculosis (TB) is the major weak link in global TB control. Drug resistant TB compounds diagnosis and treatment challenges. The most widely used diagnostic test, sputum smear microscopy, is cumbersome, insensitive, involves multiple patient visits and cannot detect multi drug or extensively drug resistant (MDR/XDR-TB). Sputum culture is costly and depending on the method used takes 4-8 weeks to obtain a result and up to 16 weeks to detect MDR/XDR-TB. Consequently, there is an urgent need for a simple, rapid diagnostic test to identify the presence of Mycobacterium tuberculosis (MTB) and perform MDR/XDR genotyping that could be performed at the public health clinic while the patient waits. The long-term objective of this project is to develop a MTB identification and MDR/XDR-TB genotyping test that can be used at the point-of-care (POC). Investigen's "smartDNATM technology" enables DNA detection to occur rapidly at room temperature in homogenous solution with colorimetric readout. The smartDNA MTB identification assay consists of: (1) conventional sputum treatment, (2) sample disruption, (3) MTB target capture by a peptide nucleic acid (PNA)-microparticle, and (4) detection via a `light-activated' color change of a second (detection) PNA-DNA target bound dye. Investigen plans to extend the use of smartDNA-based detection to MDR/XDR- TB genotyping. The proposed protocol for MTB identification and MDR/XDR-TB genotyping involves (1) conventional sputum treatment, (2) sample disruption, (3) PNA-microparticle enrichment capture of MTB conserved sequences in each of the target areas of interest, (4) sequence specific binding of the enrichment captured targets on elements of an allele-specific PNA array and (5) detection of the resulting PNA-DNA hybrids using smartDNA. The successful development of the POC smartDNA MDR/XDR-TB genotyping technology requires that (1) probe sets for the capture, detection and allele discrimination of mutations involved in MDR/XDR-TB be designed, and (2) a practical way is found to apply the smartDNA dye color change reaction to PNA-DNA hybrids bound to a planar surface. There are three specific aims. (1) Demonstrate utility of the conceived system to differentiate single base changes in MTB genomic DNA. (2) Design probe sets for the detection of mutations. (3) Develop smartDNA readout on a PNA array. A smartDNA-based MDR/XDR- TB genotyping assay would greatly improve the state of MTB diagnosis and treatment, and accordingly, is relevant to the NIH mission of reducing the burden of illness through supporting research for the improved diagnosis, prevention and cure of human diseases. PUBLIC HEALTH RELEVANCE While the United States has been largely successful in detecting, treating and controlling TB, in many countries TB, MDR-TB and XDR-TB are a serious and growing public health issue; international travel and immigration have increased transmission. The research to be completed on this project is anticipated to lead to the development of a TB, MDR-TB and XDR-TB identification system that will provide results while the patient waits and can be used in resource constrained settings throughout the world, in clinics and emergency rooms in the United States and potentially even at US borders greatly aiding public health services in the detection, treatment and control of TB, MDR-TB and XDR-TB.
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会议论文
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海外基金