Aim: The impacts of synthetic high-density lipoprotein (sHDL) phospholipid components on anti-sepsis effects were investigated. Methods: sHDL composed with ApoA-I mimetic peptide (22A) and different phosphatidylcholines were prepared and characterized. Anti-inflammatory effects were investigated in vitro and in vivo on lipopolysaccharide (LPS)-induced inflammation models. Results: sHDLs composed with 1,2-dimyristoyl-sn-glycero-3-phosphocholine (22A-DMPC) most effectively neutralizes LPS, inhibits toll-like receptor 4 recruitment into lipid rafts, suppresses nuclear factor kappa B signaling and promotes activating transcription factor 3 activating. The lethal endotoxemia animal model showed the protective effects of 22A-DMPC. Conclusion: Phospholipid components affect the stability and fluidity of nanodiscs, impacting the anti-septic efficacy of sHDLs. 22A-DMPC presents the strongest LPS binding and anti-inflammatory effects in vitro and in vivo, suggesting a potential sepsis treatment. Sepsis is triggered by endotoxins released by bacteria. These endotoxins trigger an exaggerated inflammatory response, leading to widespread inflammation and organ damage. Synthetic high-density lipoprotein (sHDL) is a potential treatment of sepsis by neutralizing endotoxins and regulating inflammatory responses. The phospholipid components of sHDL may affect the effectiveness of sHDL against sepsis. In this study, we prepared sHDLs with different phospholipids and compared their anti-septic effects on cells and in animal models. We found that sHDL made from DMPC presented the best anti-septic effects, possibly because DMPC-sHDL had the best fluidity at body temperature.
Deposition of misfolded α-synuclein (α-Syn) aggregates in the human brain is one of the major hallmarks of synucleinopathies. Positron Emission Tomography imaging (PET) of α-synuclein in Parkinson’s disease (PD) patients is highly desirable but remains elusive. An extensive PET radioligand discovery campaign was undertaken. Here, we present the in-vitro and preclinical in-vivo characterization of [ 3 H]- and [ 11 C]Compound S, representing an example of a promising PET radioligand for α-Syn. Competition binding studies and autoradiographic studies were performed in cortexes of PD patients, healthy control, and Alzheimer’s disease (AD) patients brain tissue, and mid-brain region of the aged A30P mouse using [ 3 H]S. Brain PET experiments using [ 11 C]S were carried out in a healthy non-human primate (NHP) and the aged homozygote A30P mice. Compound S is a sub-nanomolar affinity ligand to human and A30P mouse α-Syn (Kd = 0.15 nM and 0.5 nM resp.). Lower affinity was observed in AD and healthy control brain tissues. [ 3 H]S showed displaceable binding in PD brain cortex and A30P mid-brain and brainstem, and little binding in AD and healthy control. In the NHP, [ 11 C]S crosses the brain-blood barrier and the uptake phase of [ 11 C]S is followed by a washout. [ 11 C]S PET studies in A30P mice showed higher uptake in the mid brain and brainstem regions, with standard uptake value ratios in those regions higher than 2.0. Compound S is potent for α-Syn in vitro, and PET imaging in the A30P mice showed an elevated signal in regions known to accumulate α-Syn. This dataset suggests that the Compound S has promise towards imaging α-Syn in PD patients .
Acid sphingomyelinase deficiency (ASMD) is a severe lipid storage disorder caused by the diminished activity of the acid sphingomyelinase enzyme. ASMD is characterized by the accumulation of sphingomyelin in late endosomes and lysosomes leading to progressive neurological dysfunction and hepatosplenomegaly. Our objective was to investigate the utility of synthetic apolipoprotein A-I (ApoA-I) mimetics designed to act as lipid scavengers for the treatment of ASMD. We determined the lead peptide, 22A, could reduce sphingomyelin accumulation in ASMD patient skin fibroblasts in a dose dependent manner. Intraperitoneal administration of 22A formulated as a synthetic high-density lipoprotein (sHDL) nanodisc mobilized sphingomyelin from peripheral tissues into circulation and improved liver function in a mouse model of ASMD. Together, our data demonstrates that apolipoprotein mimetics could serve as a novel therapeutic strategy for modulating the pathology observed in ASMD.
Sepsis is a major health issue with mortality exceeding 30% and few treatment options. We found that high-density lipoprotein cholesterol (HDL-C) abundance was reduced by 45% in septic patients compared to that in nonseptic patients. Furthermore, HDL-C abundance in nonsurviving septic patients was substantially lower than in those patients who survived. We therefore hypothesized that replenishing HDL might be a therapeutic approach for treating sepsis and found that supplementing HDL with synthetic HDL (sHDL) provided protection against sepsis in mice. In mice subjected to cecal ligation and puncture (CLP), infusing the sHDL ETC-642 increased plasma HDL-C amounts and improved the 7-day survival rate. Septic mice treated with sHDL showed improved kidney function and reduced inflammation, as indicated by marked decreases in the plasma concentrations of blood urea nitrogen (BUN) and the cytokines interleukin-6 (IL-6) and IL-10, respectively. We found that sHDL inhibited the ability of the endotoxins LPS and LPA to activate inflammatory pathways in RAW264.7 cells and HEK-Blue cells expressing the receptors TLR4 or TLR2 and NF-κB reporters. In addition, sHDL inhibited the activation of HUVECs by LPS, LTA, and TNF-α. Together, these data indicate that sHDL treatment protects mice from sepsis in multiple ways and that it might be an effective therapy for patients with sepsis.
Lecithin:cholesterol acyltransferase (LCAT) catalyzes a critical step of reverse cholesterol transport by esterifying cholesterol in high density lipoprotein (HDL) particles. LCAT is activated by apolipoprotein A-I (ApoA-I), which forms a double belt around HDL, however the manner in which LCAT engages its lipidic substrates and ApoA-I in HDL is poorly understood. Here, we used negative stain electron microscopy, crosslinking, and hydrogen-deuterium exchange studies to refine the molecular details of the LCAT–HDL complex. Our data are consistent with LCAT preferentially binding to the edge of discoidal HDL near the boundary between helix 5 and 6 of ApoA-I in a manner that creates a path from the lipid bilayer to the active site of LCAT. Our results provide not only an explanation why LCAT activity diminishes as HDL particles mature, but also direct support for the anti-parallel double belt model of HDL, with LCAT binding preferentially to the helix 4/6 region.
High-density lipoproteins (HDLs) are unique in that they play an important role in the reverse cholesterol transport process. However, reconstituted HDL (rHDL) infusions have demonstrated limited beneficial effect in clinical practice. This is perhaps a consequence of the limited cholesterol efflux abilities of atheroma macrophages due to decreased expression of cholesterol transporters in advanced atheromas and following rHDL infusion treatment. Thus, we propose that a combination therapy of rHDL and a liver X receptor (LXR) agonist could maximize the therapeutic benefit of rHDL by upregulating ATP-binding cassette transporters A-1 (ABCA1) and ATP-binding cassette transporter G-1 (ABCG1), and enhancing cholesterol efflux to rHDL. In macrophages, rHDL downregulated the expression of ABCA1/G1 in a dose- and rHDL composition-dependent manner. Although LXR agonist, T0901317 (T1317), upregulated the expression of ABCA1 and ABCG1, the drug itself did not have any effect on cholesterol efflux (6.6 ± 0.5%) while the combination of rHDL and T1317 exhibited enhanced cholesterol efflux from [3H]-cholesterol loaded J774A.1 macrophages (23.3 ± 1.3%). Treatment with rHDL + T1317 significantly reduced the area of aortic plaque in ApoE-/- mice compared to PBS treated control animals (24.16 ± 1.42% vs. 31.59 ± 1.93%, p < 0.001), while neither rHDL nor T1317 treatment alone had a significant effect. Together, we show that rHDL paired with an LXR agonist can induce a synergetic effect in reducing atheroma burden. This synergy could lead to lower overall effective dose for both drugs, potentially overcoming the existing barriers in clinical development and renewing pharmaceutical interest in these two drug classes.
Synthetic high-density lipoprotein (sHDL) nanoparticles composed of apolipoprotein A-I mimetic peptide and phospholipids have been shown to reduce atherosclerosis in animal models. Cholesterol is mobilized from atheroma macrophages by sHDL into the blood compartment and delivered to the liver for elimination. Historically, sHDL drug discovery efforts were focused on optimizing peptide sequences for interaction with cholesterol cellular transporters rather than understanding how both sHDL components, peptide and lipid, influence its pharmacokinetic and pharmacodynamic profiles. We designed two sets of sHDL having either identical phospholipid but variable peptide sequences with different plasma stability or identical peptide and phospholipids with variable fatty acid chain length and saturation. We found that sHDL prepared with proteolytically stable 22A-P peptide had 2-fold longer circulation half-time relative to the less stable 22A peptide. Yet, longer half-life did not translate into any improvement in cholesterol mobilization. In contrast, sHDL with variable phospholipid compositions showed significant differences in phospholipid PK, with distearoyl phosphatidylcholine-based sHDL demonstrating the longest half-life of 6.0 hours relative to 1.0 hour for palmitoyl-oleoyl phosphatidylcholine-based sHDL. This increase in half-life corresponded to an approx. 6.5-fold increase in the area under the curve for the mobilized cholesterol. Therefore, the phospholipid component in sHDL plays a major role in cholesterol mobilization in vivo and should not be overlooked in the design of future sHDL. SIGNIFICANCE STATEMENT The phospholipid composition in sHDL plays a critical role in determining half-life and cholesterol mobilization in vivo.
Herein we report the development of a cytometric analysis platform for measuring the contents of individual cells in absolute (picogram) scales; this study represents the first report of Raman-based quantitation of the absolute mass-or the total amount-of multiple endogenous biomolecules within singlecells. To enable ultraquantitative calibration, we engineered single-cell-sized micro-calibration standards of known composition by inkjet-printer deposition of biomolecular components in microarrays across the surface of silicon chips. We demonstrate clinical feasibility by characterizing the compositional phenotype of human skin fibroblast and porcine alveolar macrophage cell populations in the respective contexts of Niemann-Pick disease and drug-induced phospholipidosis: two types of lipid storage disorders. We envision this microanalytical platform as the foundation for many future biomedical applications, ranging from diagnostic assays to pathological analysis to advanced pharmaco/ toxicokinetic research studies.
Background Niemann–Pick disease type C is a fatal and progressive neurodegenerative disorder characterized by the accumulation of unesterified cholesterol in late endosomes and lysosomes. We sought to develop new therapeutics for this disorder by harnessing the body’s endogenous cholesterol scavenging particle, high-density lipoprotein (HDL). Methods Here we design, optimize, and define the mechanism of action of synthetic HDL (sHDL) nanoparticles. Results We demonstrate a dose-dependent rescue of cholesterol storage that is sensitive to sHDL lipid and peptide composition, enabling the identification of compounds with a range of therapeutic potency. Peripheral administration of sHDL to Npc1 I1061T homozygous mice mobilizes cholesterol, reduces serum bilirubin, reduces liver macrophage size, and corrects body weight deficits. Additionally, a single intraventricular injection into adult Npc1 I1061T brains significantly reduces cholesterol storage in Purkinje neurons. Since endogenous HDL is also a carrier of sphingomyelin, we tested the same sHDL formulation in the sphingomyelin storage disease Niemann–Pick type A. Utilizing stimulated Raman scattering microscopy to detect endogenous unlabeled lipids, we show significant rescue of Niemann–Pick type A lipid storage. Conclusions Together, our data establish that sHDL nanoparticles are a potential new therapeutic avenue for Niemann–Pick diseases.
Background: Niemann-Pick C disease (NPC) is genetic disorder caused by an accumulation of unesterified cholesterol in late endosomes and lysosomes due to defects in NPC genes. The levels of ABCA1 gene expression and concentration of high-density lipoproteins (HDL) are significantly decreased in NPC patients. Infusion of synthetic HDL (sHDL) in patients with atherosclerosis has been previously found safe (up to 100 mg/kg) and effective at reducing cholesterol in atheroma. The objective of this study is to identify sHDL composition capable of rescuing cholesterol storage in NPC. Materials and Methods: A panel of sHDL formulations was prepared by lyophilization method using commercially available Apolipoprotein A-I mimetic peptide, 5A, complexed in various ratios with phospholipids such as sphingomyelin (SM), palmitoyl-oleoyl phosphatidylcholine (POPC), or dimyristoyl phosphatidylcholine (DMPC). The efficacy of 5A alone and sHDLs was determined in primary patient NPC and wild type fibroblast cells using fluorescent filipin staining and cholesterol efflux assay. Trafficking of sHDL in NPC fibroblasts was assessed by confocal microscopy using fluorescently-labeled sHDL. Finally, in vivo study was executed to examine effects of our best sHDL formulation 5A-SM in NPC1 I1061T homozygotes and littermate controls treated with vehicle or sHDL (100 mg/kg, i.p., 3x/wk) for 4 weeks, starting at 7 wks of age. Neurological correction was accessed by the balance beam tests and body weight changes were tracked. Results: Treatment of NPC fibroblasts with sHDL resulted in a dose- and time-dependent rescue of lipid storage (5A-POPC<5A-SM<5A-DMPC). Cellular toxicity was observed only for 5A-DMPC (~30%). HDL trafficking studies revealed that sHDLs got endocytosed into cells and co-localized with LAMP1. Additionally, administration of 100 mg/kg 5A-SM resulted in a significant rescue of body weight (p<0.01) in the NPC mice with no toxicity to animals. However, neuro-correction after sHDL treatment in adult mice was not detected. The absence of neuro-correction observed in adult NPC mice suggest that the alternative delivery routes, treatment durations, or sHDL compositions are still needed.
Objective: Synthetic high-density lipoprotein (sHDL) is a nanoparticle that can mimic biological activities of endogenous HDL such as reverse cholesterol transport (RCT) and anti-inflammatory properties. We hypothesize that differences in the fluidity of sHDL phospholipids at body temperature effect plasma stability of sHDL, particle ability to efflux cholesterol and inhibit inflammation. Methods: sHDL particles with different membrane fluidities were prepared complexing phospholipids with different fatty acid chain length and saturation (POPC, DMPC, DPPC, and DSPC) with the apoA-I mimetic peptide, PVLDLFRELLNELLEALKQKLK (22A). The ability of various sHDL compositions to efflux cholesterol, inhibit NF-kB activation and cytokine release, and cause lipid raft disruption was examined in RAW264.7 macrophages. Various sHDL were administered to mice challenged by injection of 0.05 mg/kg LPS at 10 mg/kg dose and the levels of cytokine release were measured at 2 hours post-dose. Various sHDL were dosed to normal rats at 50 mg/kg and cholesterol mobilization and pharmacokinetics were examined. Results: 22A-POPC and 22A-DMPC sHDL have relatively fluid phospholipid layer at body temperature compared to 22A-DPPC and 22A-DSPC sHDL due to lower phospholipid transition temperature. 22A-POPC and 22A-DMPC sHDL inhibited NF-κB activation and cytokine release in a concentration-dependent manner. From murine endotoxin infusion studies, 22A-DMPC displayed the significant inhibition of cytokine release. Cholesterol efflux studies demonstrated that 22A-POPC and 22A-DMPC displayed highest cholesterol efflux. Interestingly, in vivo RCT study showed that 22A-DSPC had longest plasma residence time and resulted in greatest cholesterol mobilization. Conclusions: Phospholipid composition of sHDL particles has a significant effect on its cholesterol efflux and anti-inflammatory properties, yet the effect appears to be different in vitro and in vivo . in vitro effect is driven by the ability of fluid phospholipid bilayer to bind LPS, cholesterol, and LCAT, while in vivo effect is defined by particle stability in plasma and residence time in the body.
BackgroundNiemann‐Pick C disease(NPC) is genetic disorder caused by an accumulation of unesterified cholesterolin late endosomes and lysosomes due to defects in NPC1 (95%) and NPC2(5%). Symptoms commonly start inperipheral organs, then progress to severe neurological dysfunction and death with the life expectancy depending on the disease severity. Cyclodextrin was found to be effective in scavenging cellular cholesterol and improving neurological symptoms, but it required frequent intrathecal administrations and led to severe hearing loss. Infusion of synthetic HDL (sHDL) in patients with atherosclerosis has been previously found safe (upto 100 mg/kg) and effective at reducing cholesterol accumulations in arterial plaques. The objective of this research is to identify sHDL composition capable of rescuing cholesterol storage in NPC without toxicity.Materials and MethodsA panel of sHDL formulations was prepared by lyophilization method using apolipoprotein A‐I mimetic peptide 5A complexed in various ratios with phospholipids such as sphingomyelin (SM), palmitoyl‐oleoyl phosphatidylcholine (POPC), or dimyristoyl phosphatidylcholine (DMPC). The size and morphology of resulting sHDLs were characterized by dynamic light scattering and transmission electron miscopy. The ability of 5A peptide and sHDLs (0.031,0.325, 0.750 mg/mL) to scavenge an excess of cholesterol from NPC patient primary fibroblast cells was determined using fluorescent filip in staining and [3H]cholesterol efflux assay. Trafficking of sHDL was assessed by incubating NPC cells with fluorescently‐labeled (DiA or DiD, AlexaFluor647) particles and lysosomal marker LAMP1 followed by visualization under confocal microscope. Finally, in vivo study was executed to examine effects of our best sHDL formulation 5A‐SM in NPC1 I1061T homozygotes and littermate controls treated with vehicle or sHDL (100 mg/kg, i.p., 3x/wk) for 4 weeks, starting at 7 wks of age. Neurological correction was detected by the balance beam test.ResultsProduced sHDL particles had homogeneous size distribution (~10 nm) and characteristic discoidal shape. Treatment with sHDL resulted in a dose‐, time‐, and sHDL composition‐dependent rescue of cholesterol storage in NPC fibroblasts (5A‐POPC<5A‐SM<5A‐DMPC). Cellular toxicity was observed only for 5A‐DMPC (~30%). HDL trafficking studies revealed that sHDLs got endocytosed into cells and co‐localized with LAMP1. Additionally, administration of 100 mg/kg 5A‐SM resulted in correction of peripheral NPC disease as noted by a rescue of body weight (p<0.01) with no toxicity to animals. However, no neuro correction after sHDL treatment in adult mice was detected.ConclusionsHDL, particularly 5A‐SM, was found to be effective at rescuing cholesterol accumulations in NPC cells and resulted in robust correction of bodyweight loss in NPC mice. The absence of neuro correction observed in adult NPC mice suggest that the alternative delivery routes, treatment durations, or sHDL composition optimization are still needed.Support or Funding InformationNIH T32‐GM007767, Ara Parseghian Medical Research Foundation, University of Michigan Protein Folding Diseases InitiativeThis abstract is from the Experimental Biology 2018 Meeting. There is no full text article associated with this abstract published in The FASEB Journal.
Synthetic high density lipoprotein nanoparticles (sHDLs) capable of mobilizing excess cholesterol from atherosclerotic arteries and delivering it to the liver for elimination have been shown to reduce plaque burden in patients. Unfortunately, sHDLs have a narrow therapeutic index and relative to the endogenous HDL shorter circulation half-life. Surface modification with polyethylene glycol (PEG) was investigated for its potential to extend sHDL circulation in vivo. Various amounts (2.5, 5, and 10%) and different chain lengths (2 and 5 kDa) of PEG-modified lipids were incorporated in sHDL's lipid membrane. Incorporating PEG did not reduce the ability of sHDL to facilitate cholesterol efflux, nor did it inhibit cholesterol uptake by the liver cells. By either adding more PEG or using PEG of longer chain lengths, the circulation half-life was extended. Addition of PEG also increased the area under the curve for the phospholipid component of sHDL (p < 0.05), but not for the apolipoprotein A-I peptide component of sHDL, suggesting sHDL is remodeled by endogenous lipoproteins in vivo. The extended phospholipid circulation led to a higher mobilization of plasma free cholesterol, a biomarker for facilitation of reverse cholesterol transport. The area under the cholesterol mobilization increased about 2-4-fold (p < 0.05), with greater increases observed for longer PEG chains and higher molar percentages of incorporated PEGylated lipids. Mobilized cholesterol was associated primarily with the HDL fraction, led to a transient increase in VLDL cholesterol, and returned to baseline 24 h postdose. Overall, PEGylation of sHDL led to beneficial changes in sHDL particle pharmacokinetic and pharmacodynamic behaviors.
We recently upgraded our [18F]fludeoxyglucose (FDG) production capabilities with the goal of futureproofing our FDG clinical supply, expanding the number of batches of FDG we can manufacture each day, and improving patient throughput in our nuclear medicine clinic. In this paper we report upgrade of the synthesis modules to the GE FASTLab 2 platform (Phase 1) and cyclotron updates (Phase 2) from both practical and regulatory perspectives. We summarize our experience manufacturing FDG on the FASTLab 2 module with a high-yielding self-shielded niobium (Nb) fluorine-18 target.
The receptor for advanced glycation endproducts (RAGE) is a 35 kDa transmembrane receptor that belongs to the immunoglobulin superfamily of cell surface molecules. Its role in Alzheimer's disease (AD) is complex, but it is thought to mediate influx of circulating amyloid-β into the brain as well as amplify Aβ-induced pathogenic responses. RAGE is therefore of considerable interest as both a diagnostic and a therapeutic target in AD. Herein we report the synthesis and preliminary preclinical evaluation of [(18)F]RAGER, the first small molecule PET radiotracer for RAGE (Kd = 15 nM). Docking studies proposed a likely binding interaction between RAGE and RAGER, [(18)F]RAGER autoradiography showed colocalization with RAGE identified by immunohistochemistry in AD brain samples, and [(18)F]RAGER microPET confirmed CNS penetration and increased uptake in areas of the brain known to express RAGE. This first generation radiotracer represents initial proof-of-concept and a promising first step toward quantifying CNS RAGE activity using PET. However, there were high levels of nonspecific [(18)F]RAGER binding in vitro, likely due to its high log P (experimental log P = 3.5), and rapid metabolism of [(18)F]RAGER in rat liver microsome studies. Therefore, development of second generation ligands with improved imaging properties would be advantageous prior to anticipated translation into clinical PET imaging studies.
Interest in quantifying metal-A beta species in vivo led to the synthesis and evaluation of [C-11]L2-b and [F-18]FL2-b as radiopharmaceuticals for studying the metallobiology of Alzheimer's disease (AD) using positron emission tomography (PET) imaging. [C-11]L2-b was synthesized in 3.6% radiochemical yield (nondecay corrected, n = 3), >95% radiochemical purity, from the corresponding desmethyl precursor. [F-18]FL2-b was synthesized in 1.0% radiochemical yield (nondecay corrected, n = 3), >99% radiochemical purity, from a 6-chloro pyridine precursor. Autoradiography experiments with AD positive and healthy control brain samples were used to determine the specificity of binding for the radioligands compared to [C-11]PiB, a known imaging agent for beta-amyloid (A beta) aggregates. The K-d for [C-11]L2-b and [F-18]PL2-b were found to be 3.5 and 9.4 nM, respectively, from those tissue studies. Displacement studies of [C-11]L2-b and [F-18]FL2-b with PiB and AV-45 determined that L2-b binds to A beta aggregates differently from known radiopharmaceuticals. Finally, brain uptake of [C-11]L2-b was examined through microPET imaging in healthy rhesus macaque, which revealed a maximum uptake at 2.5 min (peak SUV = 2.0) followed by rapid egress (n = 2).