首页> 美国卫生研究院文献>International Journal of Nanomedicine >Low-visibility light-intensity laser-triggered release of entrapped calcein from 12-bis (tricosa-1012-diynoyl)-sn-glycero-3-phosphocholine liposomes is mediated through a type I photoactivation pathway
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Low-visibility light-intensity laser-triggered release of entrapped calcein from 12-bis (tricosa-1012-diynoyl)-sn-glycero-3-phosphocholine liposomes is mediated through a type I photoactivation pathway

机译:低能见度的激光触发从I2型光激活途径介导12-双(tricosa-1012-diynoyl)-sn-glycero-3-phosphocholine脂质体中捕获的钙黄绿素的释放。

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摘要

We recently reported on the physical characteristics of photo-triggerable liposomes containing dipalmitoylphosphatidylcholine (DPPC), and 1,2-bis (tricosa-10,12-diynoyl)-sn-glycero-3-phosphocholine (DC8,9PC) carrying a photo agent as their payload. When exposed to a low-intensity 514 nm wavelength (continuous-wave) laser light, these liposomes were observed to release entrapped calcein green (Cal-G; Ex/Em 490/517 nm) but not calcein blue (Cal-B; Ex/Em 360/460 nm). In this study, we have investigated the mechanism for the 514 nm laser-triggered release of the Cal-G payload using several scavengers that are known specifically to inhibit either type I or type II photoreaction pathways. Liposomes containing DPPC:DC8,9PC: distearoylphosphatidylethanolamine (DSPE)-polyethylene glycol (PEG)-2000 (86:10:04 mole ratio) were loaded either with fluorescent (calcein) or nonfluorescent (3H-inulin) aqueous markers. In addition, a non-photo-triggerable formulation (1-palmitoyl-2-oleoyl phosphatidylcholine [POPC]:DC8,9PC:DSPE-PEG2000) was also studied with the same payloads. The 514 nm wavelength laser exposure on photo-triggerable liposomes resulted in the release of Cal-G but not that of Cal-B or 3H-inulin, suggesting an involvement of a photoactivated state of Cal-G due to the 514 nm laser exposure. Upon 514 nm laser exposures, substantial hydrogen peroxide (H2O2, ≈100 μM) levels were detected from only the Cal-G loaded photo-triggerable liposomes but not from Cal-B-loaded liposomes (≤10 μM H2O2). The Cal-G release from photo-triggerable liposomes was found to be significantly inhibited by ascorbic acid (AA), resulting in a 70%–80% reduction in Cal-G release. The extent of AA-mediated inhibition of Cal-G release from the liposomes also correlated with the consumption of AA. No AA consumption was detected in the 514 nm laserexposed Cal B-loaded liposomes, thus confirming a role of photoactivation of Cal-G in liposome destabilization. Inclusion of 100 mM K3Fe(CN)6 (a blocker of electron transfer) in the liposomes substantially inhibited Cal-G release, whereas inclusion of 10 mM sodium azide (a blocker of singlet oxygen of type II photoreaction) in the liposomes failed to block 514 nm laser-triggered Cal-G release. Taken together, we conclude that low-intensity 514 nm laser-triggered release of Cal-G from photo-triggerable liposomes involves the type I photoreaction pathway.
机译:我们最近报道了含有二棕榈酰磷脂酰胆碱(DPPC)和带有光敏剂的1,2-双(tricosa-10,12-diynoyl)-sn-glycero-3-phosphocholine(DC8,9PC)的可光触发脂质体的物理特性作为他们的有效载荷。当暴露于低强度514 nm波长(连续波)激光下时,观察到这些脂质体释放出包埋的钙黄绿素绿(Cal-G; Ex / Em 490/517 nm),但不释放钙黄绿素蓝(Cal-B; Ex / Em 360/460 nm)。在这项研究中,我们研究了使用几种清除剂对514 nm激光触发的Cal-G有效载荷释放的机理,这些清除剂专门抑制I型或II型光反应途径。将包含DPPC:DC8,9PC:二硬脂酰磷脂酰乙醇胺(DSPE)-聚乙二醇(PEG)-2000(86:10:04摩尔比)的脂质体装入荧光(钙黄绿素)或非荧光( 3 H-菊粉)水性标记物。此外,还研究了具有相同有效载荷的非光触发制剂(1-棕榈酰基-2-油酰基磷脂酰胆碱[POPC]:DC8,9PC:DSPE-PEG2000)。在可光触发脂质体上进行的514 nm波长激光照射导致释放Cal-G,但没有释放Cal-B或 3 H-菊粉,表明涉及Cal-G的光激活状态由于514 nm激光曝光。在514 nm激光照射下,仅从装载Cal-G的光触发脂质体中检测到大量过氧化氢(H2O2,≈100μM),而从装载Cal-B的脂质体(≤10μMH2O2)中未检测到过氧化氢。发现光触发脂质体中的Cal-G释放被抗坏血酸(AA)显着抑制,导致Cal-G释放减少70%–80%。 AA介导的对Cal-G从脂质体释放的抑制程度也与AA的消耗有关。在514 nm激光照射的载有Cal B的脂质体中未检测到AA消耗,因此证实了Cal-G的光活化在脂质体去稳定中的作用。脂质体中包含100 mM K3Fe(CN)6(电子转移阻滞剂)基本上抑制了Cal-G的释放,而脂质体中包含10 mM叠氮化钠(II型光反应单线态氧的阻滞剂)未能阻止。 514 nm激光触发的Cal-G释放。两者合计,我们得出结论,从光触发脂质体中低强度514 nm激光触发释放Cal-G涉及I型光反应途径。

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