We present a simple protocol for reconstituting functional mitochondrial respiratory supercomplexes into well-defined proteoliposomes for correlated structural and functional characterization.
Method Article
* These authors contributed equally
We present a simple protocol for reconstituting functional mitochondrial respiratory supercomplexes into well-defined proteoliposomes for correlated structural and functional characterization.
Mitochondria are central hubs in bioenergetic metabolism and are the primary source of ATP. The inner mitochondrial membrane houses the oxidative phosphorylation system, which includes electron transport chain complexes (CI, CII, CIII2, and CIV) and the ATP synthase (CV). In mammals, CI, CIII2, and CIV form higher-order structures called supercomplexes (SCs) such as SC I+III2+IV, SC I+III2, and SC III2+IV. Although the physiological factors favoring SC formation remain unclear, it has been proposed that SC formation may enhance electron-transfer rates between complexes, reduce reactive oxygen species production, or prevent nonspecific protein aggregation within the densely packed mitochondrial inner membrane. Structural and functional studies of respiratory SCs have relied heavily on detergent-extracted complexes. While these studies have improved our understanding of the electron transport chain, the lack of a sealed membrane bilayer limits their ability to probe the functional benefits of supercomplex assembly. Recent advances, however, have shown that membrane proteins can be structurally characterized in reconstituted, native-like membrane environments, offering a more physiological context for these investigations. Here, we present a simple, quick, and reproducible protocol for reconstituting respiratory SCs into liposomes. This method allows for testing the effects of varying lipid compositions, protein concentration, and membrane potential on the function of respiratory SCs, providing a valuable tool for future mechanistic studies.
Mitochondria are central to eukaryotic respiration. The inner mitochondrial membrane (IMM) hosts the oxidative phosphorylation system, comprising the electron transport chain complexes (CI–CIV) and ATP synthase (CV)1. CI and CII transfer electrons from reduced substrates to ubiquinone (CoQ), generating ubiquinol (CoQH2), which passes electrons through CIII2 and via cytochrome c to CIV, where oxygen is reduced to water. Proton pumping by CI, CIII2, and CIV establishes the proton motive force (PMF), which is utilized by CV to synthesize ATP from ADP and inorganic phosphate (P)1.
In addition to functioning independently, CI, CIII2, and CIV can assemble into higher-order supercomplex (SC) structures with defined stoichiometries, such as SC I+III2+IV (also known as the respirasome), SC I+III2, and SC III2+IV2,3,4,5. The functional advantages of these assemblies remain unclear6. Hypotheses on their function range from roles in assembly and substrate channeling to being a byproduct of the high protein density in the inner mitochondrial membrane (IMM)3,7,8,9,10,11,12,13,14,15. Recent studies suggest that membrane properties, including hydrophobic mismatch-induced membrane strain, protein–protein interactions, and protein-lipid interactions, contribute to SC formation and stability16.
Structural and functional studies of membrane proteins have traditionally relied on detergent-solubilized complexes, which disrupt native membrane environments and limit investigation of processes dependent on membrane potential and ion gradients. In contrast, recent advances demonstrate that membrane proteins can be structurally characterized in reconstituted17,18,19 or native membranes20,21,22,23, significantly enhancing our ability to examine functional mechanisms of membrane proteins reliant on membrane potential and ion gradients.
This protocol describes a simple and reproducible method for reconstituting mitochondrial respiratory supercomplexes (SCs) into defined proteoliposomes. The resulting system provides a powerful platform for investigating fundamental questions related to respiratory SC formation, stability, and function in a controlled, native-like membrane environment. By incorporating CoQ10 and cytochrome c during reconstitution, we demonstrate that the proteoliposome-reconstituted SCs support NADH-driven oxygen consumption, indicating that the complexes remain functionally competent within the lipid bilayer. We further show that SCs can be readily visualized in proteoliposomes using cryogenic electron microscopy (cryo-EM), thereby enabling a direct correlation between structural organization and biochemical activity.
While the method is robust and readily reproducible, successful reconstitution depends on careful optimization of lipid composition, detergent concentration, protein-to-lipid ratio, and efficient membrane sealing to preserve supercomplex stability and activity.
The overall goal of this method is to enable integrated structural and functional analysis of respiratory SCs under defined membrane conditions. This approach addresses key limitations of detergent-based systems by restoring SCs to a sealed lipid bilayer that can support the formation of a membrane potential and physiologically relevant protein–lipid interactions. In addition, the system allows precise control over lipid composition, cofactors, and protein content, making it well-suited for systematic testing of how membrane properties influence SC stability and activity. Compared with detergent-solubilized preparations or in situ approaches, this method offers the distinct advantage of combining functional assays, such as NADH-driven oxygen consumption, with cryo-EM-based structural analysis, thereby enabling structure–function correlations that are difficult to achieve using other systems.
Porcine heart mitochondrial membranes were isolated from commercially purchased heart tissue harvested from animals that were slaughtered for human consumption. No live animals were used specifically for this protocol. The use of this material was determined to be exempt from animal ethics approval because the tissue was obtained as a byproduct from animals slaughtered for human consumption.
1. Purification of mitochondrial supercomplex SC I+III2/SC I+III2+IV from washed membranes of porcine heart mitochondria
2. Preparation of lipid mix
NOTE: Modified from previously reported protocols27,28. Chloroform is toxic, volatile, and a suspected carcinogen. Handle only in a certified chemical fume hood with appropriate PPE. Pentane is highly flammable. Keep away from ignition sources. Handle only in a certified chemical fume hood with appropriate PPE. Dispose of organic solvent waste in approved halogenated/non-halogenated solvent waste containers according to institutional EH&S policies.
3. Reconstitution of mitochondrial SCs into liposomes
4. Lipid flotation assay29
5. CI spectroscopic ferricyanide activity assay and CI in-gel activity assay
6. ACMA fluorescence quenching assay to measure membrane integrity of the reconstituted proteoliposomes29
7. Respirometry measurements of oxygen consumption to assess the function of reconstituted SCs30.
NOTE: The oxygen consumption rate is measured using a Clark-type oxygen electrode system. The functional assays of the reconstituted SCs are performed directly on the eluate from the desalting column (step 3.9).
8. Estimation of the size of the reconstituted liposomes using dynamic light scattering
9. Cryogenic electron microscopy grid preparation and screening
Using this protocol, we identified the optimal reconstitution conditions for mitochondrial supercomplexes (SCs) isolated from porcine heart mitochondria (Figure 1A,B). The sucrose step-gradient protocol effectively separates reconstituted proteoliposomes from empty vesicles and unincorporated proteins, enabling rapid testing and condition optimization. The representative results in Figure 2 show a gradient with the applied sample before and after centrifugation. In addition, we optimized the detergent used to reconstitute respiratory SC into liposomes. Four different detergents—anionic bile salt detergent, CHAPS, digitonin, and glycoside detergent—were used separately for reconstitution with the SCs. The total CI activity in the fractions was measured by the NADH-ferricyanide oxidoreduction assay for each detergent tested (Figure 3A–D). For successful reconstitutions, maximal activity for CI was observed in fractions at the interface of the two sucrose concentrations (27% w/v sucrose and 7% w/v sucrose). Notably, minimal activity is detected in Fraction #10 for anionic bile salt detergent and CHAPS, while Fraction #10 for both digitonin and glycoside detergent shows substantial activity, indicating that digitonin and a glycocide detergent do not effectively reconstitute the supercomplexes into the liposomes. An anionic bile salt detergent was used for all subsequent reconstitutions.
CI and CIV in-gel activity assay performed on blue-native polyacrylamide electrophoresis gel of digitonin-extracted POPC:POPE:CL (2:2:1) proteoliposomes demonstrates the relative quantities of SC and individual ETC complexes after reconstitution (Figure 4). Results indicate that the interaction between CI and CIII2 is largely maintained in the proteoliposomes after re-extraction with digitonin and BN-PAGE. Although some CIV activity is present in the supercomplex band, a strong signal is also observed at a lower molecular weight consistent with CIV alone, indicating dissociation. The membrane leakiness of the reconstituted liposomes was measured using the ACMA fluorescence quenching assay, indicating that the proteoliposomes were not significantly leaky to protons (Figure 5A,B). The size of the reconstituted liposomes was estimated using DLS, showing that extrusion prior to reconstitution leads to a final proteoliposome size distribution of 82.9 ± 0.8 nm diameter for empty vesicles and 110.6 ± 0.4 nm for reconstituted supercomplex proteoliposome RSPs (Figure 6). Oxygen consumption by the proteoliposomes was used to assess SC function, revealing clear inhibitor-sensitive NADH-driven oxygen consumption (Figure 7A). Plotting the OCRs relative to the OCR after the addition of NADH directly reports on the degree of coupling within the RSPs, i.e., the OCR increases by a factor of ~1.5 after addition of CCCP relative to addition of NADH alone (Figure 7B). The screened Cryo-EM grids enabled visualization of the SCs in the proteoliposome membrane, confirming successful reconstitution (Figure 8A–I).

Figure 1: Isolation and characterization of detergent-solubilized supercomplexes from porcine heart mitochondria. (A) Representative chromatogram of size-exclusion chromatography (SEC) purification of digitonin extracted porcine mitochondrial membrane complexes. (B) Blue-native PAGE (BN-PAGE) of fractions from A visualized by CI in-gel activity staining. Please click here to view a larger version of this figure.

Figure 2: Sucrose step gradients with proteoliposomes. Before centrifugation (left), after centrifugation (right) at 100,000 × g for 2 h in an ultracentrifuge. The proteoliposome sample loaded onto the gradient is separated into empty vesicles, proteoliposomes, and aggregated protein at the bottom. This gradient is then fractionated for further characterization as described. The approximate extent of each fraction is indicated and labeled. Please click here to view a larger version of this figure.

Figure 3: Flotation assay to assess reconstitution efficiency in different detergents. CI NADH-ferricyanide activity on the fractions from the sucrose step gradient after reconstituting with (A) anionic bile salt detergent, (B) 3-[(3-cholamidopropyl)dimethylammonio]-1-propanesulfonate (CHAPS) (0.6% (w/v)), (C) digitonin (0.6% w/v), (D) glycoside detergent (GDN) (0.6% (w/v)). Fraction #10 is obtained by resuspending any pellet in the last fraction. Activity in fraction #10 indicates that the proteins have not reconstituted. n = 3 and the error bars show SD = standard deviation. Please click here to view a larger version of this figure.

Figure 4: In-gel activity assay on digitonin-extracted proteoliposomes run on 3%–12% BN-PAGE. CI (left) and CIV (right) in-gel activity assay. R = respirasome (SC I+III2+IV), SC1,3 (SC I+III2), IGA CI = (CI in-gel activity assay); IGA = ingel activity assay CIV = (CIV in-gel activity assay). Please click here to view a larger version of this figure.

Figure 5: ACMA fluorescence quenching assay to detect proton leakiness in reconstituted proteoliposomes. With a pH-sensitive dye (ACMA), the internal pH of reconstituted proteoliposomes (cyan) was compared to empty liposomes (orange) after sequential addition of Valinomycin and CCCP. Shown are representative ACMA fluorescence traces obtained from different proteoliposome preparations for comparison. (A) Reconstituted liposomes with compromised membrane (leaky). (B) Reconstituted liposomes with intact membrane. Please click here to view a larger version of this figure.

Figure 6: Dynamic light scattering measurements of empty liposomes and reconstituted SC proteoliposomes. The average volume-weighted size distributions of extruded empty liposomes (orange) and SC-reconstituted proteoliposomes (cyan) are shown. The measurements were carried out as three technical repeats. Empty liposomes have an average hydrodynamic diameter of 82.9 ± 0.8 nm, while RSPs have an average hydrodynamic diameter of 110.6 ± 0.4 nm. Please click here to view a larger version of this figure.

Figure 7: Oxygen consumption assays to assess coupling of reconstituted SCs in liposomes. Oxygen consumption was measured to evaluate respiratory activity and coupling of ETC complexes after reconstitution into liposomes generated by extrusion. (A) Representative background-corrected oxygen electrode trace showing changes in oxygen concentration following sequential addition of NADH to initiate CI-driven respiration, CCCP to dissipate the proton gradient and measure maximal uncoupled oxygen consumption rate (OCR), piericidin A to inhibit CI, Antimycin A to inhibit CIII2, or NaN3 (Azide) to inhibit CIV. (B) Quantification of the OCR under the indicated conditions and corrected according to step 7.10. Data points relative to the OCR after addition of NADH are shown for each trace along with the mean ± SD (error bars). Please click here to view a larger version of this figure.

Figure 8: Cryo-EM visualization of reconstituted SCs in proteoliposome membranes. (A–C) Representative electron micrographs of screened grids showing reconstituted SCs associated with proteoliposome membranes. Reconstituted SCs are indicated with yellow arrows. Scale bars = 50 nm. (D–I) Representative SC particles viewed at higher zoom on the proteoliposome membranes. Scale bars = 10 nm. Please click here to view a larger version of this figure.
A simple and reproducible method is presented for reconstituting mitochondrial respiratory SCs into defined proteoliposomes, enabling controlled investigation of their structure and function. Several steps in this protocol are critical for successful reconstitution. In our hands, liposomes generated by extrusion have a more uniform size distribution (assessed by dynamic light scattering) than those produced by sonication. Efficient removal of detergent using a pre-packed desalting spin column is essential to promote membrane sealing and proper incorporation of SCs into a lipid bilayer; incomplete removal can result in leaky or unstable proteoliposomes. Optimization of lipid composition, protein-to-lipid ratios, and detergent choice is equally important, as these parameters strongly influence reconstitution efficiency and SC stability. The sucrose gradient flotation assay is useful for initial optimization; however, once conditions are established, it is preferable to use proteoliposomes directly after the pre-packed desalting spin column for downstream structural and functional analyses, thereby avoiding sample loss and disruption during gradient fractionation. The volume of the fraction required to observe activity varies across preparations. Adjust the volume to add to the reaction mix for different preparations. The orientation of the respiratory SC within the proteoliposome membrane can significantly influence respiratory measurements. The reconstitution procedure was not optimized to enforce a single topology; therefore, although a mixed population of orientations is expected, CI ferricyanide accessibility assays indicate a strong bias toward outward-facing CI peripheral arms.
The orientation of the reconstituted supercomplexes was experimentally assessed, and the CI ferricyanide activity was measured in the presence and absence of the detergent. In intact RSPs, externally added NADH can only access CI molecules whose peripheral arm is exposed to the external medium, whereas detergent permeabilization allows NADH access to all complexes. Thus, this assay estimates the fraction of functionally accessible CI peripheral arms that face the external medium, rather than providing a complete structural determination of the proteoliposome topology. Comparison of activities measured under these conditions indicated that 83.1% ± 0.04% of respirasomes (the SC) were oriented with the CI peripheral arm facing outward, revealing a significant orientation bias during reconstitution.
Several modifications and troubleshooting strategies can improve reproducibility and stability. In-gel activity assays for CI and CIV, performed on digitonin-extracted pooled fractions from sucrose gradients, show bands for SC, indicating that SC does not fully dissociate during reconstitution. However, the SC band is stronger on the CI activity gel compared to the CIV activity gel, indicating that CIV may partially dissociate from CI and CIII2 after reconstitution (Figure 4). Adjusting lipid composition may enhance SC stability. Partial dissociation of CIV may also arise from detergent choice or rapid detergent removal during reconstitution, which could destabilize weaker protein–protein interactions within the supercomplex. Further optimization of detergent exchange conditions may improve CIV retention. In addition, minimizing mechanical stress, avoiding unnecessary purification steps, and carefully handling samples can help preserve the integrity of proteoliposomes. For functional assays, ensuring complete sealing of proteoliposomes is critical, as membrane leakiness prevents coupling to the transmembrane proton gradient. For cryo-EM grid preparation, the use of continuous carbon-coated grids is important because this has been shown to improve particle distribution within grid holes19.
Despite its advantages, this approach has limitations. Proteoliposomes do not fully recapitulate the compositional and dynamic complexity of the native inner mitochondrial membrane, and partial dissociation of SC components, particularly CIV, remains a challenge. Functional readouts may also be influenced by incomplete coupling or heterogeneity in reconstitution efficiency. Nevertheless, compared to detergent-solubilized systems, this method preserves lipid–protein interactions and supports a native-like membrane environment, while offering greater experimental control than in situ approaches. As such, it provides a valuable platform for systematic investigation of how lipid composition and membrane properties regulate SC stability and activity.
Understanding these relationships is particularly important because disruption of respiratory supercomplex organization has been implicated in a broad range of mitochondrial and metabolic disorders31,32,33,34,35,36,37,38,39,40. Defects in ETC complex assembly, cardiolipin synthesis, or lipid remodeling, as observed in disorders such as Leigh syndrome41,42,43,44,45,46,47, Barth syndrome48,49,50,51,52,53,54, and Sengers syndrome48, can destabilize supercomplexes, impair electron transfer, reduce ATP production, and increase reactive oxygen species generation. These bioenergetic defects disproportionately affect high-energy-demand tissues such as the heart, skeletal muscle, and brain, leading to phenotypes including cardiomyopathy, exercise intolerance, and neurodegeneration36,37,38. Conversely, emerging evidence suggests that supercomplex formation can serve compensatory and protective roles under stress by stabilizing ETC complexes and limiting pathological ROS production55,56. The reconstituted proteoliposome platform described here provides a controlled system to directly test how disease-associated lipid remodeling, mutations, or pharmacological interventions alter supercomplex assembly and function, thereby enabling mechanistic studies of mitochondrial dysfunction and informing future therapeutic strategies.
Low oxygen consumption rates may result from poor supercomplex incorporation, partial CIV dissociation, residual detergent, insufficient CoQ10 or cytochrome c, degraded NADH, or low protein concentration in the oxygraph chamber. Confirm reconstitution by flotation assay or BN-PAGE, verify membrane integrity by ACMA quenching, prepare fresh NADH, and optimize protein-to-lipid ratio, cofactor concentration, detergent removal, and sample concentration. Leaky proteoliposomes may result from incomplete detergent removal, excessive detergent concentration, harsh handling, repeated freeze–thaw cycles, or damaged lipids. If proton leakage is observed in the ACMA assay, repeat detergent removal using a freshly equilibrated desalting column, avoid over-spinning the column, prepare fresh liposomes, minimize mechanical stress, and use proteoliposomes immediately after reconstitution. Aggregation during the concentration steps can occur due to high local protein or detergent concentrations at the concentrator membrane. Concentrate samples in short (10 min) centrifugation cycles, gently resuspend the sample between spins, avoid over-concentration, maintain samples at 4 °C, and remove visible aggregates by low-speed clarification before downstream use. Inconsistent flotation behavior may reflect variable liposome size, incomplete detergent removal, aggregation, incorrect sucrose layering, or disruption of the gradient during sample loading or fraction collection. Prepare fresh sucrose solutions, layer gradients slowly without mixing interfaces, use uniformly extruded liposomes, keep centrifugation conditions constant, and collect fractions gently from top to bottom. Poor cryo-EM particle distribution may arise from low proteoliposome concentration, aggregation, preferred adsorption to carbon, poor grid wetting, thick ice, or excessive blotting. Optimize proteoliposome concentration, remove aggregates before grid preparation, adjust glow-discharge conditions, test blot time and blot force, screen different grid types or carbon supports, and use freshly prepared samples whenever possible.
The authors declare no conflicts of interest.
The grids were screened at the UC Davis BioEM Core facility. We thank Dr. Fei Guo for assistance with screening. The work was funded by the NIGMS of the NIH under award R35GM137929 (JAL).
| Name | Company | Catalog Number | Comments |
|---|---|---|---|
| 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (POPC) | Avanti Research | 860320 | |
| 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphoethanolamine (POPE) | Avanti Research | 850757 | |
| 1,3-bis(sn-3’-phosphatidyl)-sn-glycerol (cardiolipin,from bovine heart tissue) | Avanti Research | 840012 | |
| 2-[4-(2-hydroxyethyl)piperazin-1-yl]ethanesulfonic acid --- HEPES | Sigma-Aldrich | H23830 | |
| 3-(N-morpholino)propanesulfonic acid (MOPS) | Sigma-Aldrich | M12545 | |
| 3,3′-Diaminobenzidine ---- DABB | Sigma-Aldrich | D4293 | |
| Carbonyl Cyanide m-Chlorophenylhydrazone ---- CCCP | Sigma-Aldrich | C2759 | |
| CHAPS | Sigma-Aldrich | 220201 | |
| Chloroform | Sigma-Aldrich | 650948 | |
| Coenzyme Q10 | Sigma-Aldrich | C9538 | |
| Cytochrome c from equine heart | Sigma-Aldrich | C2506 | |
| Digitonin | Sigma-Aldrich | 300410 | |
| Ethylene glycol-bis(2-aminoethylether)-N,N,N′,N′-tetraacetic acid --- EGTA | Sigma-Aldrich | E3889 | |
| Ethylenediaminetetraacetic acid -- EDTA | Sigma-Aldrich | E6758 | |
| Glycerol | Sigma-Aldrich | G7893 | |
| Glyco-diosgenin | Anatrace | GDN101 | detergent |
| Lauryl Maltose Neopentyl Glycol ---- LMNG | Sigma-Aldrich | NG310 | |
| Magnesium chloride | Sigma-Aldrich | M8266 | |
| Myxothiazol | Sigma-Aldrich | T5580 | |
| NADH, Disodium Salt | Sigma-Aldrich | 481913 | |
| Nitrotetrazolium blue chloride | Sigma-Aldrich | N6876 | |
| Piericidin A | Sigma-Aldrich | 96861 | |
| Potassium acetate | Sigma-Aldrich | P5708 | |
| Potassium chloride | Sigma-Aldrich | P3911 | |
| Potassium Ferricyanide | Sigma-Aldrich | 702587 | |
| Potassium phosphate monobasic ---- KH2PO4 | Sigma-Aldrich | P0662 | |
| Sodium azide | Sigma-Aldrich | S2002 | |
| Sodium cholate hydrate | Sigma-Aldrich | C1254 | |
| Sodium chloride | Sigma-Aldrich | S9888 | |
| Sodium dithionite | Sigma-Aldrich | 71699 | |
| Sucrose | Sigma-Aldrich | S9378 | |
| TRIS | Sigma-Aldrich | T1503 | |
| ACMA (9-amino-6chloro-2-methoxyacridine) | Sigma-Aldrich | SML4162 | |
| Equipment and Kits | |||
| Amicon® Ultra Centrifugal Filter, 100 kDa MWCO 0.5 mL | Millipore | UFC5100 | |
| Amicon® Ultra Centrifugal Filter, 100 kDa MWCO 15 mL | Millipore | UFC9100 | |
| Beckman Optima TLX Ultracentrifuge | Beckman Coulter | ||
| BN-PAGE gel | blue-native polyacrylamide gel electrophoresis gel | ||
| Beckman Optima XE Ultracentrifuge | Beckman Coulter | ||
| Glow Discharge Cleaning System | glow discharge cleaning system | ||
| Glacios 2 Cryo-TEM with Gatan K3 detector | Thermo Fisher Scientific | the transmission electron microscope | |
| KIMBLE Dounce tissue grinder set | Sigma-Aldrich | D9188 | |
| Leica Automatic GP2 Plunger | Leica | ||
| Microfuge 16 | Beckman Coulter | A46474 | |
| NGC Discover 10 Chromatography System | Bio-Rad | 7880009 | |
| Oxygraph+ | the oxygen electrode system | ||
| PD-10 Desalting Column | Cytiva | 28918007 | size exclusion spin column |
| Pierce BCA Protein assay kit | Thermo Fisher Scientific | 23225 | bicinchoninic acid protein assay kit |
| Q-125 Sonicator | Q-sonica | Q125-110 | |
| Sephadex G-25 M column | prepacked G-25 resin desalting spin column | ||
| SpectraMax M2 microplate reader | Molecular Devices | ||
| Superose 6 increase 10/300 GL | Cytiva | 29091596 | cross-linked agarose gel filtration medium |
| TLA-100.3 Fixed-Angle Rotor Package | Beckman Coulter | 349490 | |
| Type 50.2 Ti Fixed-Angle Rotor | Beckman Coulter | 337901 | |
| Milli-Q (MQ) water | ultrapure water | ||
| Malvern Zetasizer ZS Dynamic Light Scattering (DLS) | Malvern Paranytical | ||
| Hansatech Oxygraph+ System | Hansatech Instruments | ||
| PELCO easiGlow Glow Discharge Cleaning System | TED PELLA, INC | ||
| Vitrobot Mark IV System | Thermo Fisher Scientific | the plunge freezer | |
| Quantifoil R 1.2/1.3 300 mesh copper grids with 2 nm carbon | TED PELLA, INC | 668-300-Cu-100 | holey carbon-coated |
| Avanti mini-extruder | Avanti Lipids | 610000 |
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