Device for Hyperfast Scalable Vitrification of Germplasm in Large Volumes
Device for Hyperfast Scalable Vitrification of Germplasm in Large Volumes
批准号:
8393582
负责人:
Igor Katkov
金额:
$14.0万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-08-24 至 2013-04-23
关键词:
AchievementAnimal ModelBiological PreservationBiomedical EngineeringCell VolumesCellsCollaborationsComputer softwareCryopreservationCryoprotective AgentsDevicesElectronicsEmbryoEngineeringEquipmentEquipment and SuppliesFertilityFreezingFurunclesFutureGenerationsGeneticGlycerolGoalsHumanIceIndustryLaboratory AnimalsMethodsModelingNitrogenOocytesOvarian TissuePhasePluripotent Stem CellsProtocols documentationRelative (related person)Reproductive HealthReproductive TechniquesSamplingScreening procedureSeminal fluidShippingShipsSolutionsSpeedStem cellsSuspension substanceSuspensionsSystemTechniquesTestingThermal ConductivityTimeToxic effectUmbilical Cord BloodWateranimal breedinganimal facilitycell typecryobiologycryogenicsdesigndesign and constructionexperienceinnovationmodel designnovelprogramsprototypesperm cellstemvapor
中文摘要
描述(由申请人提供):种质(GP)(精子、卵母细胞、胚胎、干细胞、卵巢组织)的冷冻保存对于保护模式动物的遗传多样性、人类生殖健康、动物养殖业和野生动物保护至关重要。虽然存在许多方法、装置和设备,用于慢速冷冻和快速冷却(玻璃化),但每种方法、细胞类型和物种实际上都需要自己的最佳保存方案。玻璃化(VF)越来越受欢迎,许多类型的GP(包括精子和干细胞)正在开发成功的方案。然而,所有现有的VF方法都需要复杂和仔细的定时,可能容易出现技术错误,通常不可扩展,并且仅限于非常小的样本量(0.5- 5.5 L)。因此,冷冻保存精液、脐带血干细胞、足够数量的多能干细胞和卵巢组织等样本是极其困难的。另一方面,虽然潜在毒性冷冻保护剂(CPA)的数量已经大大减少,但大多数GP类型的浓度仍然相对较高,除了毒性,CPA
英文摘要
DESCRIPTION (provided by applicant): Cryopreservation of germplasm (GP) (sperm, oocytes, embryos, stem cells, ovarian tissues) is essential for preserving the genetic variety of model animals, reproductive health in humans, the animal breeding industry and wildlife conservation. Although many methods, devices, and equipment exist both for slow freezing and fast cooling (vitrification), each method, cell type and species practically needs its own optimal preservation protocol. Vitrification (VF) is gaining in popularity with successful protocols being developed for many types of GP, including spermatozoa and stem cells. However, all existing VF methods require complicated and careful timing, may be prone to technical errors, often are not scalable, and are limited to very small sample volumes (0.5-5 ?L). As such, cryopreservation of samples such as semen, cord blood stem cells, and sufficient amounts of pluripotent stem cells and ovarian tissue is extremely difficult. The other aspect is that while th amount of potentially toxic cryoprotective agents (CPA) has been greatly reduced, the concentrations are still relatively high for the majority of GP types, and beside toxicity, the CPA
addition and elution times must be precisely controlled. One of the major factors for vitrification
is the critical cooling rate necessary for vitrification (Bcr), which strongly and inversely depend on the CPA concentration, For example, hundreds of thousands of ?C/min are needed to vitrify a water-glycerol solution that is tolerable for ALL CPA species concentrations. All existing methods purport to achieve such high speeds, but many have not in fact done so, mainly due to the Leidenfrost effect (LFE) - where a boiling nitrogen vapor coat forms around the sample. This vapor coat impairs thermal conductivity by orders of magnitude and makes even droplets that are a fraction of a ? m L impossible to vitrify. With a speed around 500,000 ?K/min, we hypothesize that we can vitrify practically ALL species of germplasm using a unified method, equipment and supplies. Our Celltronix team has developed a completely new system for hyperfast cooling, called "KrioBlast(r)", which completely eliminates LFE and can cool much larger samples than those currently used at rates of hundreds of thousands ?C/min. We have built a pilot model (first generation) of the system, the manually operated Krioblast-1, with which
we could vitrify large sample volumes with dilute CPA solutions and also achieved some promising results for two trials on human and bull sperm. Upon obtaining a higher cooling rate, we will be close to devising a "Universal Cryopreservation Protocol". In this Project, we will buil a semi-automatic system Krioblast-2, which would produce 2-3 fold faster cooling rates with a target of 200,000 ?C/min and vitrify cell volumes of up to 4,000 mL (1-2 orders of magnitude higher than is currently possible). We believe that such rates will be sufficient to vitrify all tyes of GP using a practically unified protocol. In Phase II, we will build a closed modular stem for hyperfast cooling, cryogenic storage and shipment, and hyperfast thawing of cells and test Krioblast-3 on real germplasm cells.
PUBLIC HEALTH RELEVANCE: Cryopreservation of germplasm (sperm, oocytes, embryos, stem cells, ovarian tissues) is essential for preserving the genetic variety of model animals, assisting human fertility techniques, the animal breeding industry, and wildlife conservation. A large variety of cryopreservation methods, devices and equipment currently exists, but each method, cell type and species would need its own optimal protocol. The goal of this Project is to develop a novel scalable device for hyper-fast (hundreds of thousands of ?C/min) cooling that would allow vitrification of a wide variety of germplasm cells and species using unified equipment and protocols, which will not only significantly benefit germplasm cryopreservation, but may eventually shift cryopreservation paradigms.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Device for Hyperfast Scalable Vitrification of Germplasm in Large Volumes
-
批准号:8606275
-
项目类别:
-
资助金额:$0.9万
-
财政年份:2013
-
负责人:Igor Katkov
-
依托单位:
海外基金