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Organic Chemistry
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JoVE Science Education Organic Chemistry
Separation of Mixtures via Precipitation
  • 00:00Overview
  • 01:06Principles of Precipitation
  • 02:55Precipitation of Milk Proteins
  • 05:18Applications
  • 07:39Summary

Trennen von Gemischen durch Ausfällung

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Overview

Quelle: Labor von Dr. Ana J. García-Sáez, Eberhard-Karls-Universität Tübingen

Die meisten Proben von Interesse sind Gemische aus vielen verschiedenen Komponenten. Probenvorbereitung, ein wichtiger Schritt in der analytischen Prozess entfernt Störungen, die die Analyse beeinträchtigen können. Als solche ist die Entwicklung von Trenntechniken ein wichtiges Unterfangen nicht nur in der Wissenschaft, sondern auch in der Industrie.

Ein Weg, um Mischungen zu trennen ist, ihre Löslichkeit Eigenschaften zu verwenden. In diesem kurzen Artikel behandeln wir mit wässrigen Lösungen. Die Löslichkeit eines Stoffes von Interesse richtet sich nach (1) die Ionenstärke der Lösung, (2) pH-Wert und Temperatur (3). Ein Zustand, in dem die Verbindung unlöslich ist durch Manipulation mit diesen drei Faktoren, lässt sich die Verbindung von Interesse aus dem Rest der Probe zu entfernen. 1

Principles

Procedure

1. die Ausfällung von CaCO3 5 mL 1 M CaCl2vorbereiten. 5 mL 1 M Na2CO3vorbereiten. Dazugeben Sie in einem kleinen Zentrifugenröhrchen (1,5 mL) 750 µL CaCl2 750 µL Na2CO3. Warten Sie 2 Minuten für die Reaktion auftreten. Die Lösung sollte bewölkt drehen. Zentrifugieren Sie die Mischung bei 10.000 × g für 5 min. Den Überstand abgießen. Das Pellet 1 mL kaltes Wasser …

Results

Solubility equilibria is employed in many purification processes.  Calcium can be removed from water using sodium carbonate. The solubility product (Ksp) of CaCO3 is 4.8 × 10-9. Mixing 1 M of CaCl2 and 1 M of Na2CO3 produced CaCO3 precipitate. The precipitate was separated from the rest of the solution using centrifugation.

Casein (a key protein in milk) has an isoelectric point at pH 4.6 and formed insoluble curds at this pH. The curds were then separated from the rest of the solution (also called whey) using either filtration or centrifugation (Figure 3a). The curd was washed with ethanol to remove phospholipids and other water-soluble compounds that were also trapped in the curd. Centrifugation prevented loss of proteins better than filtration as there were some proteins that stuck to the filter paper. The separated components were analyzed using SDS-PAGE (Figure 3b), showing that the precipitation reaction separated most of the casein from the whey. Other milk proteins, such as globulins, precipitate together with casein. Further steps may be applied for isolating casein from the rest of the proteins.

Precipitation removes most impurities from the solid, however it can also trap some impurities within the matrix. Recrystallization is often employed to further purify a solid (Figure 4). In this experiment, the solid was mixed with a solvent in which the solid was not very soluble. The temperature of the mixture was then raised to the solvent’s boiling point and enough solid is added to saturate the hot solvent. Other insoluble impurities could then be removed via a filtration step. The hot solution was then gradually cooled to room temperature and cooled further in a refrigerator/cold room/ice bath. The slow process resulted in crystals instead of amorphous precipitate. The soluble impurities were not incorporated into the crystal lattice and the resulting crystals were relatively more pure than the crude precipitate. The crystals were then harvested using filtration and left to dry in air (or in vacuum).

Figure 3
Figure 3. Precipitation of milk proteins. (A) Pictures of different steps in milk protein isolation. (B) SDS-PAGE of the different samples.

Figure 4
Figure 4. Recrystallization of KCl.

Applications and Summary

Precipitation reactions are applied to many sample preparation processes. As mentioned before, they can be used to remove salts or specific ions depending on their solubility equilibria. They can also be used to remove proteins and other biomolecules from mixtures.

Recrystallization is often employed to further purify solids. This process removes trapped impurities within the solid. Among others, recrystallization can be used to purify salts and organic molecules.

Centrifugation and filtration techniques are applicable to most sample preparation demands to separate insoluble components from the solvent. Filtration is often used in organic chemistry to separate pure crystallized compounds from its solvent. It is also used after solid-liquid extractions in natural products chemistry or analytical chemistry. Centrifugation is often used to separate mixtures of different densities and as shown here applied to separation of milk components and precipitated salt.

In biochemistry, most processes such as protein, lipid, and DNA isolation involves precipitation reactions, centrifugation and filtration methods to purify samples. And while most of these processes have been fully standardized into commercial kits, there is still a lot of room for optimization, as different biological molecules require different conditions.

Disclosures

No conflicts of interest declared.

References

  1. Kotz, J., Treichel, P., Townsend, J. Chemistry and Chemical Reactivity. 8th ed. Brooks/Cole, Belmont, CA (2012).
  2. Arakawa, T., Timasheff, S.N.  Mechanism of Protein Salting In and Salting Out by Divalent Cation Salts: Balance between Hydration and Salt Binding. Biochemistry. 23, 5912-5923 (1984).

Transcript

Precipitation is a technique used to separate a mixture based on the solubility of its components. The solubility of a compound depends on the ionic strength of the solution, its pH, and temperature. Manipulation of these factors can cause a compound to become an insoluble solid, and fall out of solution. This is called precipitation.

The insoluble solid, called the precipitate, initially forms a suspension, meaning that it is well dispersed in solution. The precipitate typically agglomerates, and then is separated from the liquid by sedimentation, centrifugation, or filtration. This video will introduce several methods of separating compounds using precipitation, and demonstrate a procedure in the laboratory.

A dissolved compound can be precipitated out of solution by introducing a counter ion. For example, silver can be precipitated out of solution in the reaction between silver nitrate and sodium chloride. The nitrate ion is replaced by a counter-ion, chloride, resulting in the formation of solid silver chloride.

Increasing the salt concentration of a solution can also induce precipitation. This technique, called salting-out, is common for the isolation of proteins. At high salt concentration, water molecules are more attracted to the dissolved salt, leaving fewer to stabilize the protein. As a result, the protein molecules aggregate and form a solid.

Precipitation can also be caused by a change in pH. At high and low pH, the protein is charged and attracted to the polar solution. At a certain point, the net charge of a compound becomes zero. This is the isoelectric point, or pI. The compound is unable to interact with the polar solution, causing it to aggregate and precipitate.

Temperature also affects solubility, as higher temperature increases the solubility of solids. By decreasing temperature, dissolved compounds can re-solidify. The rate of solid formation determines relative purity.

The following experiments will demonstrate the precipitation of the protein casein from milk using pH, and further separation via filtration and centrifugation methods.

To begin this procedure, add 250 mL of milk into a beaker with a stir bar. Gently warm the milk to 40 °C on a stirring hot plate. Immerse a pH meter into the warm milk, and monitor the pH. Add acetic acid drop-wise to the milk until the pH reaches the casein isoelectric point, 4.6. Insoluble milk proteins, or curds, precipitate out of solution at the isoelectric point. Remove the curds from solution by filtration. If the filter paper gets clogged, mix with a spatula to help the solution flow through. If this does not improve the filtration, change the filter paper. Transfer the wet solid from the clogged filter paper to new filter paper. This should absorb more liquid, or whey, from the solid. Continue changing the filter paper until there is minimal wetness. Pressing lightly on the solids may help the filter paper to absorb more whey.

Re-suspend the dried milk solids in 70% ethanol to wash the phospholipids out of the curds and then repeat the filtration process. As an alternative to filtration, protein solids can also be separated using centrifugation. Centrifuge 50 mL portions of the milk mixture and decant the supernatant. Re-suspend the pellet in 50 mL of 70% ethanol to help remove the phospholipids from the curds, and repeat the centrifugation process.

The milk protein solids can then be stored or re-suspended in another solution for further analysis, such as SDS-PAGE. For more information, see our video on this technique. SDS-PAGE analysis shows that precipitation enabled the removal of most impurities from the whey. All of the casein was found in the pellet, while none was found in the supernatant.

Precipitation is a commonly used technique, which can be applied to separate a variety of mixtures or solutions.

Compounds can be precipitated from a solution using a counter ion, as in this example of the precipitation of calcium carbonate.

Calcium chloride and sodium carbonate are both soluble in the aqueous phase.

When they are mixed, the calcium and carbonate form an insoluble solid, which can be separated with centrifugation. For more information on this topic, see our education video on solubility rules.

Precipitation can be utilized in the preparation of nano-scale solids that are found in a wide range of applications in nanotechnology. In this example, nano-scale seeds were used to control the growth of nano-crystals.

The precursors were heated, reacted with trioctylphosphine selenide, and then rapidly cooled. Methanol was added to the cooled solution, in order to precipitate the solids. The crystals were then recovered by centrifugation, and the crystal structure analyzed with X-ray Diffraction.

Precipitation can also be used in the preparation of polymeric ligands for drug delivery applications. In this example, a ligand is synthesized and conjugated to platinum for use as an anticancer therapy. First, the ligand was synthesized using an amide coupling reaction. It precipitated as the reaction progressed. It was then recovered using filtration.

The solid was then purified using recrystallization, and filtered again. The ligand was then complexed with the platinum compound, dried, and then purified using fractional precipitation from water with acetone. Platinum coupling was confirmed using nuclear magnetic resonance spectroscopy. The compounds could then be studied for their efficacy and side effects as anticancer agents.

You have just watched JoVE’s introduction to the separation of mixtures using precipitation. You should now understand the various methods of precipitation, and how to perform these experiments in the laboratory.

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JoVE Science Education Database. JoVE Science Education. Separation of Mixtures via Precipitation. JoVE, Cambridge, MA, (2023).