SBIR Phase I: Developing serial suspended microchannel resonators as a platform for personalized medicine in cancer
SBIR Phase I: Developing serial suspended microchannel resonators as a platform for personalized medicine in cancer
批准号:
1841883
负责人:
Selim Olcum
金额:
$22.5万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-02-01 至 2019-12-31
中文摘要
该SBIR第一阶段项目旨在证明微流控仪器作为一种新的单细胞生物物理生物标志物--质量积累率(MAR)的临床测量工具的技术可行性。拟议项目的成功完成将构成改进癌症患者治疗战略的医疗仪器的基础。为个别患者分配最佳治疗方案对于癌症的治疗尤为重要,因为每个人的癌症都是独一无二的。尽管肿瘤细胞的基因图谱一直是癌症个性化药物治疗的黄金标准,但最近的结果表明,只有一小部分患者实际上从专门为他们分配的治疗中受益。除了少数癌症类型(使用基因图谱可以观察到患者的剧烈反应)外,大多数癌症患者继续遭受无效或次优治疗,这是美国癌症治疗成本的主要驱动因素之一。这与传染病的个性化药物形成了鲜明对比,在感染疾病中,几乎所有患者都得到了通过功能分析确定的最佳治疗方案,这些方案是基于监测一组药物影响下微生物的体外增殖而确定的。不幸的是,没有一种基于增殖的癌症检测方法被证明足够可靠,不能广泛应用于临床,这主要是因为与细菌不同,大多数癌细胞在从人体内移除后很快就会死亡。这个SBIR第一阶段项目将开发测量癌细胞MAR的技术,作为药物反应的衡量标准。MAR反应反映了单个细胞如何在非常短的时间内改变其生长对药物的反应,而没有体外培养的长期影响。将在该项目中进行的研究将证明在临床环境中为一组治疗方案测量MAR的技术可行性。该项目的结果将直接使临床研究得以进行,然后最终通过临床试验寻求FDA的批准。该项目的重点是一种被称为串联悬浮微通道谐振器(SSMR)的新技术,它可以以极高的精度测量单细胞的质量和质量累积率(MAR)。这个SBIR第一阶段项目将测试sSMR平台的技术可行性,以临床和商业相关的速度、多功能性和健壮性来测量原发肿瘤样本的药物敏感性。该公司的目标是将sSMR开发为一个平台,并引入MAR作为生物物理生物标记物,指导临床医生为特定癌症患者确定最佳治疗方案。因此,第一阶段的目标是至关重要的,因为取自患者的活检样本中的肿瘤细胞在异质性、计数方面存在差异,在大多数情况下,在体外24-48天内失去活性。在第一阶段,将开发关键技术,使sSMR芯片能够以高吞吐量和高速率处理各种细胞类型和计数的样本。解决分析初级样品的技术挑战的研究活动将分为三个方面。首先,在保持测量精度的同时,将提高芯片中细胞的流速,以防止原发肿瘤细胞附着在通道壁上。这是具有挑战性的,因为测量的精度与每个单元在芯片中花费的时间成反比。其次,将在芯片上实施光流控切换技术,采用新的微流控T型结设计,能够对颗粒形态进行成像和表征,并避免死细胞、碎片和二重态,以提高分析的稳健性和吞吐量。第三,通过利用微流控T形接头和发展的成像能力,将开发一种微流控细胞浓缩技术。这一功能将允许在细胞数量有限的肿瘤活检上测试更大的药物条件。为了验证这些创新,将测量和分析从10名多发性骨髓瘤患者身上提取的肿瘤细胞对三种药物及其组合的反应。这一奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
This SBIR Phase I project aims to demonstrate the technical feasibility of a microfluidic instrument as a clinical tool for measuring a new single-cell biophysical biomarker; mass accumulation rate (MAR). Successful completion of the proposed project will constitute the foundation of a medical instrument that will improve treatment strategies for cancer patients. Assigning the optimal therapy for individual patients is particularly important for the treatment of cancer, since every individual's cancer is unique. Although genetic profiling of tumor cells has been the gold standard for personalized medicine approaches in cancer, recent results demonstrate that only a small percentage of patients actually benefit from therapies specifically assigned for them. Aside from few cancer types, where drastic patient responses can be observed using genetic profiling, most cancer patients continue to suffer from ineffective or sub-optimal therapies, which in one of the main drivers of the cost of cancer treatment in the US. This stands in stark contrast to personalized medicine in infectious diseases, where almost all patients are prescribed optimal treatments determined by functional assays based on monitoring the proliferation of microbes ex vivo under the influence of a panel of drugs. Unfortunately, no proliferation-based test for cancer has proven to be sufficiently reliable to be widely adopted for clinical use, mostly because unlike bacteria most cancer cells quickly die when removed from the human body. This SBIR Phase I project will develop the techniques to measure MAR of cancer cells as a metric for drug response. MAR response reflects how individual cells change their growth in response to drugs in very short timescales without the long-term effects of ex vivo culturing. The research that will be conducted in this project will prove the technical feasibility of measuring MAR in a clinical setting for a panel of treatment options. Outcomes of this project will directly enable clinical studies to be conducted, before ultimately seeking FDA approval through clinical trials. The focus of this project is a new technology known as the serial Suspended Microchannel Resonator (sSMR), which can measure mass and mass accumulation rates (MAR) of single cells with extreme precision. This SBIR Phase I project will test the technical feasibility of the sSMR platform for measuring drug susceptibility of primary tumor samples with a clinically and commercially relevant speed, versatility and robustness. The company aims to develop sSMR as a platform and introduce MAR as biophysical biomarker guiding clinicians in identifying the best therapy options for a specific cancer patient. Therefore, the goals of this first phase are critical, as tumor cells in biopsy samples taken from patients show differences in heterogeneity, count, and in most cases, lose their viability within 24-48 ex vivo. In Phase I, key technologies will be developed that will enable a sSMR chip to process samples with various cell types and counts at a high throughput and rate. The research activities to address the technical challenges for analyzing primary samples will be three-fold. First, while maintaining the measurement precision, the flow rate of cells in the chip will be increased to prevent primary tumor cells from adhering to channel walls. This is challenging, because the precision of measurement is inversely proportional to the time duration each cell spends in the chip. Second, an opto-fluidic switching technique will be implemented on chips with a new microfluidic T-junction design enabling imaging and characterization of particle morphology, and the avoidance of dead cells, debris, and doublets to improve assay robustness and throughput. Third, by leveraging the microfluidic T-junction and developed imaging capabilities, a microfluidic cell enrichment technique will be developed. This feature will allow for a larger panel of drug conditions to be tested on tumor biopsies with limited cell counts. For validation of these innovations, response of tumor cells taken from 10 multiple myeloma patients to a panel of three drugs and their combinations will be measured and analyzed.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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SBIR Phase II: Developing suspended microchannel resonators as a platform for personalized medicine in cancer
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批准号:2026060
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项目类别:Cooperative Agreement
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资助金额:$100.0万
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财政年份:2020
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负责人:Selim Olcum
-
依托单位:
国内基金
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