V. Akopyan, V. Gorshenev, E. Budoragin, M. V. Bambura, M. Dragún
{"title":"生物相容性磷酸钙组合物在超声领域的合成","authors":"V. Akopyan, V. Gorshenev, E. Budoragin, M. V. Bambura, M. Dragún","doi":"10.18127/j15604136-202105-07","DOIUrl":null,"url":null,"abstract":"Introduction reflects the great interest of practical restorative medicine in artificial structures that mimic the structure and properties of natural bone tissue that are made from biocompatible composite materials suitable for restoring the integrity of bone elements of the musculoskeletal system. The Introduction also contains the physicochemical foundations and approaches to a new ultrasonic technologies providing accelerated production of a biocompatible composite material, precisely hydroxyapatite particles in a collagen matrix. Experimental part contains a description of methods and equipmets for accelerated production of a hydroxyapatite suspension in the field of a hydroacoustic emitter, which ensures that the cavitation threshold at room temperature is exceeded, at which intense acoustic vortex microflows provide a decrease in diffusion restrictions, accelerating the interaction between reacting components. The reaction is carried out with the simultaneous supply of an aqueous solution of calcium monophosphate hydrate and a suspension of calcium hydroxide. The resulting finished product is separated using an ultrasonic self-cleaning filter, where the same, by nature, microflows allow the implementation of a continuous accelerated separation of synthesized particles in an ultrasonic self-cleaning filter of the installation, where, after separation, the precipitate is also subjected to cleaning. The resulting particles of hydroxyapatite mixed with the solution collagen and homogenized in an ultrasonic field at frequency of 22 kHz and an energy density in the reaction volume from 1 to 10 W / cm3. Obtained homogenate can be easily used to create various implant designs with predetermined sizes and shapes and after freezedrying was transformed in biocompatible composite with a porous structure. To control biocompatibility, samples of this composite in form of thin plate was sewed under the skin into the scruff of white lab rats. A suspension of hydroxyapatite mechanically combined with the collagen during 30 s homogenization by ultrasound at frequency of 22 kHz and at energy density of 3 W / cm3, form a complex that is freeze-dried, after which it can be used to form the biocomposite body with porous structure and with given dimensions and shapes. 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Experimental part contains a description of methods and equipmets for accelerated production of a hydroxyapatite suspension in the field of a hydroacoustic emitter, which ensures that the cavitation threshold at room temperature is exceeded, at which intense acoustic vortex microflows provide a decrease in diffusion restrictions, accelerating the interaction between reacting components. The reaction is carried out with the simultaneous supply of an aqueous solution of calcium monophosphate hydrate and a suspension of calcium hydroxide. The resulting finished product is separated using an ultrasonic self-cleaning filter, where the same, by nature, microflows allow the implementation of a continuous accelerated separation of synthesized particles in an ultrasonic self-cleaning filter of the installation, where, after separation, the precipitate is also subjected to cleaning. 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引用次数: 0
摘要
引言反映了实用修复医学对人工结构的极大兴趣,这种人工结构模仿天然骨组织的结构和特性,由生物相容性复合材料制成,适合于恢复肌肉骨骼系统骨元素的完整性。介绍还包含物理化学基础和方法,以一种新的超声技术提供加速生产的生物相容性复合材料,精确羟基磷灰石颗粒在胶原蛋白基质。实验部分包括在水声发射器场中加速生产羟基磷灰石悬浮液的方法和设备的描述,确保超过室温下的空化阈值,在此情况下,强烈的声涡微流提供了扩散限制的减少,加速了反应组分之间的相互作用。该反应是在同时提供水合一磷酸钙水溶液和氢氧化钙悬浮液的情况下进行的。所得到的成品使用超声波自清洁过滤器分离,其中相同的,从本质上讲,微流允许在安装的超声波自清洁过滤器中实现合成颗粒的连续加速分离,其中,分离后,沉淀物也要进行清洗。所得羟基磷灰石颗粒与胶原蛋白溶液混合,在频率为22 kHz的超声场中均质,反应体积的能量密度为1至10 W / cm3。获得的匀浆可以很容易地用于制造具有预定尺寸和形状的各种植入物设计,并在冷冻干燥后转化为具有多孔结构的生物相容性复合材料。为了控制生物相容性,将该复合材料以薄板形式的样品缝在皮肤下的白色实验室大鼠颈部。将羟基磷灰石悬浮液与胶原蛋白机械结合,在22khz频率和3w / cm3能量密度下进行30 s的超声均质,形成复合物,冷冻干燥后,可用于形成具有多孔结构和给定尺寸和形状的生物复合体。将具有可生物降解聚合物胶原蛋白的磷酸钙生物复合材料板皮下植入实验室小白鼠的颈毛,显示其与活体组织具有良好的生物相容性,不会立即或延迟引起不良反应。
Synthesis of biocompatible calcium-phosphate compositions in ultrasound field
Introduction reflects the great interest of practical restorative medicine in artificial structures that mimic the structure and properties of natural bone tissue that are made from biocompatible composite materials suitable for restoring the integrity of bone elements of the musculoskeletal system. The Introduction also contains the physicochemical foundations and approaches to a new ultrasonic technologies providing accelerated production of a biocompatible composite material, precisely hydroxyapatite particles in a collagen matrix. Experimental part contains a description of methods and equipmets for accelerated production of a hydroxyapatite suspension in the field of a hydroacoustic emitter, which ensures that the cavitation threshold at room temperature is exceeded, at which intense acoustic vortex microflows provide a decrease in diffusion restrictions, accelerating the interaction between reacting components. The reaction is carried out with the simultaneous supply of an aqueous solution of calcium monophosphate hydrate and a suspension of calcium hydroxide. The resulting finished product is separated using an ultrasonic self-cleaning filter, where the same, by nature, microflows allow the implementation of a continuous accelerated separation of synthesized particles in an ultrasonic self-cleaning filter of the installation, where, after separation, the precipitate is also subjected to cleaning. The resulting particles of hydroxyapatite mixed with the solution collagen and homogenized in an ultrasonic field at frequency of 22 kHz and an energy density in the reaction volume from 1 to 10 W / cm3. Obtained homogenate can be easily used to create various implant designs with predetermined sizes and shapes and after freezedrying was transformed in biocompatible composite with a porous structure. To control biocompatibility, samples of this composite in form of thin plate was sewed under the skin into the scruff of white lab rats. A suspension of hydroxyapatite mechanically combined with the collagen during 30 s homogenization by ultrasound at frequency of 22 kHz and at energy density of 3 W / cm3, form a complex that is freeze-dried, after which it can be used to form the biocomposite body with porous structure and with given dimensions and shapes. Subcutaneous implantation of plates of a calcium-phosphate biocomposite with a biodegradable polymer collagen, into the scruff of a laboratory white mouse showed its good biocompatibility with tissues of a living organism, without causing either immediate or delayed adverse events in them.