ASTM F2450-2004 Standard Guide for Assessing Microstructure of Polymeric Scaffolds for Use in Tissue Engineered Medical Products《组织工程医疗产品中使用的聚酯脚手架的微观结构评估的标准指南》.pdf
《ASTM F2450-2004 Standard Guide for Assessing Microstructure of Polymeric Scaffolds for Use in Tissue Engineered Medical Products《组织工程医疗产品中使用的聚酯脚手架的微观结构评估的标准指南》.pdf》由会员分享,可在线阅读,更多相关《ASTM F2450-2004 Standard Guide for Assessing Microstructure of Polymeric Scaffolds for Use in Tissue Engineered Medical Products《组织工程医疗产品中使用的聚酯脚手架的微观结构评估的标准指南》.pdf(9页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: F 2450 04Standard Guide forAssessing Microstructure of Polymeric Scaffolds for Use inTissue Engineered Medical Products1This standard is issued under the fixed designation F 2450; the number immediately following the designation indicates the year oforiginal adoption or, in the case of
2、revision, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon (e) indicates an editorial change since the last revision or reapproval.1. Scope1.1 This guide covers an overview of test methods that maybe used to obtain information relating to
3、 the dimensions ofpores, the pore size distribution, the degree of porosity,interconnectivity, and measures of permeability for porousmaterials used as polymeric scaffolds in the development andmanufacture of tissue engineered medical products (TEMPs).This information is key to optimizing the struct
4、ure for aparticular application, developing robust manufacturing routes,and for providing reliable quality control data.1.2 This guide does not purport to address all of the safetyconcerns, if any, associated with its use. It is the responsibilityof the user of this standard to establish appropriate
5、 safety andhealth practices and to determine the applicability of regula-tory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2D 2873 Test Method for Interior Porosity of Poly(VinylChloride) (PVC) Resins by Mercury Intrusion Porosim-etry3D 4404 Test Method for Determination of Por
6、e Volume andPore Volume Distribution of Soil and Rock by MercuryIntrusion PorosimetryE 128 Test Method for Maximum Pore Diameter and Per-meability of Rigid Porous Filters for Laboratory UseE 1294 Test Method for Pore Size Characteristics of Mem-brane Filters Using Automated Liquid PorosimeterF 316 T
7、est Method for Pore Size Characteristics of Mem-brane Filters by Bubble Point and Mean Flow Pore TestF 2150 Guide for Characterization and Testing of Biomate-rial Scaffolds Used in Tissue-Engineered Medical Products2.2 ISO Standard:4ISO 845 Cellular Plastics and RubbersDetermination ofApparent (Bulk
8、) Density3. Terminology3.1 Definitions:3.1.1 bioactive agent, nany molecular component in, on,or within the interstices of a device that is intended to elicit adesired tissue or cell response.3.1.1.1 DiscussionGrowth factors and antibiotics are typi-cal examples of bioactive agents. Device structura
9、l compo-nents or degradation byproducts that evoke limited localizedbioactivity are not included.3.1.2 blind (end)-pore, na pore that is in contact with anexposed internal or external surface through a single orificesmaller than the pores depth.3.1.3 closed cell, na void isolated within a solid, lac
10、kingany connectivity with an external surface. Synonym: closedpore3.1.4 hydrogel, na water-based open network of polymerchains that are cross-linked either chemically or throughcrystalline junctions or by specific ionic interactions.3.1.5 permeability, na measure of fluid, particle, or gasflow throu
11、gh an open pore structure.3.1.6 polymer, na long chain molecule composed ofmonomers including both natural and synthetic materials, forexample, collagen, polycaprolactone.3.1.7 pore, na liquid (fluid or gas) filled externally con-necting channel, void, or open space within an otherwise solidor gelat
12、inous material (for example, textile meshes composedof many or single fibers (textile based scaffolds), open cellfoams, (hydrogels). Synonyms: open-pore, through-pore.3.1.8 porogen, na material used to create pores within aninherently solid material.3.1.8.1 DiscussionFor example, a polymer dissolved
13、 inan organic solvent is poured over a water-soluble powder.Afterevaporation of the solvent, the porogen is leached out, usuallyby water, to leave a porous structure. The percentage ofporogen needs to be high enough to ensure that all the pores areinterconnected.1This guide is under the jurisdiction
14、 of ASTM Committee F04 on Medical andSurgical Materials and Devices and is the direct responsibility of SubcommitteeF04.42 on Biomaterials and Biomolecules for TEMPs.Current edition approved Nov. 1, 2004. Published December 2004.2For referenced ASTM standards, visit the ASTM website, www.astm.org, o
15、rcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.3Withdrawn.4Available from American National Standards Institute (ANSI), 25 W. 43rd St.,4th Floor, New York, NY 10036.1Copyright AST
16、M International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.3.1.9 porometry, nthe determination of the distribution ofopen pore diameters relative to the direction of fluid flow bythe displacement of a non-volatile wetting fluid as a function ofpressure.3.1.1
17、0 porosimetry, nthe determination of the pore vol-ume and pore size distribution through the use of a non-wettingliquid (typically mercury) intrusion into a porous material as afunction of pressure.3.1.11 porosity, nproperty of a solid which contains aninherent or induced network of channels and ope
18、n spaces.Porosity can be determined by measuring the ratio of pore(void) volume to the apparent (total) volume of a porousmaterial and is commonly expressed as a percentage.3.1.12 scaffold, na support, delivery vehicle, or matrix forfacilitating the migration, binding, or transport of cells orbioact
19、ive molecules used to replace, repair, or regeneratetissues.3.1.13 through-pores, nan inherent or induced network ofvoids or channels that permit flow of fluid (liquid or gas) fromone side of the structure to the other.3.1.14 tortuosity, na measure of the mean free path lengthof through-pores relati
20、ve to the sample thickness. Alternativedefinition: The squared ratio of the mean free path to theminimum possible path length.4. Summary of Guide4.1 The microstructure, surface chemistry, and surface mor-phology of polymer-based tissue scaffolds plays a key role inencouraging cell adhesion, migratio
21、n, growth, and prolifera-tion. The intention of this guide is to provide a compendium oftechniques for characterizing this microstructure. The breadthof the techniques described reflects the practical difficulties ofquantifying pore sizes and pore size distributions over lengthscales ranging from na
22、nometres to sub-millimetres and theporosity of materials that differ widely in terms of theirmechanical properties.4.2 These microstructural data when used in conjunctionwith other characterization methods, for example, chemicalanalysis of the polymer (to determine parameters such as themolecular we
23、ight and its distribution), will aid in the optimi-zation of scaffolds for tissue engineered medical products(TEMPs). Adequate characterization is also critical to ensurethe batch-to-batch consistency of scaffolds; either to assessbase materials supplied by different suppliers or to developrobust ma
24、nufacturing procedures for commercial production.4.3 Application of the techniques described in this guidewill not guarantee that the scaffold will perform the functionsfor which it is being developed but they may help to identifythe reasons for success or failure.4.4 This guide does not suggest tha
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