
Cationic liposomes are traditionally used for the delivery of genetic materials such as various types of DNA (pDNA, cDNA, CpG DNA, oligonucleotide, antisense oligonucleotide, etc.), various types of RNA such as (siRNA, mRNA, etc.) and nucleic acid mimics (NAMs). The encapsulation of DNA into the conventional neutral charged PC based liposomes can be a technical problem mainly due to the plasmid size. Due to this problem in late 80s, the liposomes composed of cationic lipids and PE have been developed. The idea was to neutralize the negative charge of pDNA with positive charge of cationic lipids in order to capture more plasmid efficiently mainly due to electrostatic interaction and deliver them into the cells. Generally, the procedure is simply based on mixing the cationic liposomes with DNA or RNA and adding them to the cells. This results in the formulations of aggregates.
In order to design a proper cationic lipid for gene delivery, two approaches have been used for the cationic lipid synthesis: 1) cholesterol-based design such as DC-Cholesterol and GL-67 lipids, and 2) non-cholesterol-based designs such as DOTAB, DDAB and DOTMA. To successfully transfer the gene in vitro using liposomes, some consideration should be taken into account: i) the ability of binding and packing DNA/RNA in liposomes; ii) the interaction of the packaged DNA/RNA to the cell surface; iii) the efficiency of the internalization of DNA/RNA; iv) the intracellular DNA-release from endosomes in case of endocytosis involvement; v) the transgenic expression level in cell nuclei. pH-sensitive liposomes have been designed based on their tendency to release their content in the acidic condition. The primary concept was based on viruses that fuse with the endosomal membrane by means of a protein at pH 5-6, delivering their genetic material to the cytosol before reaching the lysosomes. Typically, a pH-sensitive liposome consists of dioleoylphosphatidylethanolamine (DOPE). Since phosphatidylethanolamine (PE) changes in acidic conditions, it is believed to act as a membrane fusion promoter. The effectiveness of the interaction between liposomes and cells is highly dependent on the liposome compositions. Liposomes are captured by various endocytosic processes, and the efficiency depends on the cell type and liposome size. Liposomes of various sizes and charges can attach to the macrophages and neutrophils through active phagocytosis. After attachment of the liposome to the cell surface, the internalization into the endosomes occurs due to a more acidic pH (6.50) at early endosomes. The liposomes are transferred to the last endosome with more acidic pH (5.5-6.0) by maturation or vesicular fusion, which takes 10-15 min. Twenty minutes (or more) after uptake, the contents are delivered to the lysosome with pH 5.0 or less. Lysosomes are the main degrading and last endocytotic section in the endocytotic pathway, in where pH-insensitive liposomes are accumulated and degraded. However, after penetration of pH-sensitive liposomes into cells, the accumulation and degradation do not occur.
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GM实验:试剂说明书上要求20分钟显色,10分钟的时候看一下,差不多就可以加终止液,但是我的标曲显色特别快,2分钟最低浓度蓝色就就深了,此时样本颜色还很浅很浅,我只能一块儿加终止液。所以,标曲显色过快,可能是什么原因?
(ps:第一列是标曲,后面是样本)
采用抗-HBe抗体包被反应板,加入校准品及被测样本,同时加入定量HBeAg中和抗原,经过振荡孵育,洗板后再加入铕标记的抗-HBe,若标本中抗-HBe浓度高,HBeAg将被大量中和,使最后形成的抗-HBe-HBeAg-铕标记抗-HBe复合物减少。增强液(β-NTA)将标记在抗体上的Eu3+解离到溶液中,Eu3+和增强液中的有效成分形成高荧光强度的螯合物,荧光强度和样本中的抗-HBe浓度成反比。
1、直接竞争,标记抗原,与检测样品中的抗原竞争抗体。
2、间接竞争,标记抗体,固相抗原与液相抗原(样品)竞争标记抗体。
3、定义
间接竞争法的模型:包被抗原,用HRP-抗体与样本一起加入。样本中的Ag与Solid-Ag竞争HRP-Ab,固相吸附的HRP-Ab与样本中的Ag浓度成反比。
直接竞争法的模型:包被抗体,用HRP-抗原与样本一起加入。样本中的Ag与HRP-Ag竞争Solid-Ab,固相吸附的HRP-Ag与样本中的Ag浓度成反比。
4、竞争法的理论基础:是限量抗体。只有在限量抗体基础上,两种抗原才会形成竞争关系。
5、、间接竞争法具备较高灵敏度原因。
直接竞争法里,标记抗原与待测抗原均是液相,与抗体的结合机会是一样的,例如有1份标记抗原与1份待测抗原竞争1份抗体,那么有50%的标记抗原能与抗体结合,所以标记抗原的相对结合率为50%。间接法里,固相抗原与抗体的接触面积较小,固相抗原与待测抗原的结合抗体机会是不平等的,接近顺序饱和法,即只有与待测抗原结合剩余的抗体才会与固相抗原结合,同样有1份固相抗原与1份待测抗原竞争1份抗体时,基本上抗体会被待测抗原中和掉,与固相抗原结合的抗体非常少。固相抗原的相对结合率为0%。因此,间接法的抑制曲线斜率会大于竞争法。
因为抑制率越大则斜率越大,从而灵敏度越大。(假设零管变异5%,以两倍SD为灵敏度限,则为90%相对结合率,则间接法可以在较低的待测抗原浓度达到这一相对结合率,因此灵敏度要高。)
在进行系统放大时,间接法一般可以使用酶标二抗。因为二抗可以针对抗体的多个部位,所以存在放大效应,从而能提高间接法的灵敏度。直接法一般难以进行放大,常用的有生物 素化抗原与酶标亲和素,但模式上似乎不存在放大效应。
6、间接法的高灵敏度难以实现的原因:
双抗体 夹心的免放(IRMA)模式刚出现时,也被模型证明灵敏度优于竞争法的放免(RIA),原因也是较大的斜率,但是IRMA的高灵敏度一直到单抗发展后才得以实现。