MCC is produced through the acid hydrolysis of cellulose under high temperature and pressure.
Fillers play a critical role in direct compression tablet manufacturing. They must possess suitable physicochemical properties to ensure that the powder blend exhibits adequatecompressibility andflowability prior to tablet compression.
The key factors influencing the performance of filler excipients include particle size, particle shape, bulk density, solubility, and moisture content. Because fillers constitute the largest proportion of most tablet formulations, they also have a significant impact on tablet weight uniformity and batch-to-batch consistency. In addition, the solid-state form (polymorphism) of an excipient influences its performance. In general, amorphous materials exhibit better compressibility and flowability than their crystalline counterparts.
To further enhance these functional properties, a variety of manufacturing technologies have been developed. Among them, spray drying is one of the most widely used processes to improve both the compressibility and flowability of direct compression excipients.
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Microcrystalline cellulose (MCC) is produced by the acid hydrolysis of cellulose under elevated temperature and pressure. MCC is available in various grades with different particle sizes and bulk densities. Among them, MCC 102, with a particle size of approximately 130 µm, is the most commonly used grade for direct compression because of its excellent flowability.
MCC is regarded as the most compressible filler for direct compression. During compression, MCC undergoes plasticdeformation, allowing it to function not only as a filler but also as a dry binder, promoting strong interparticle bonding within the powder blend. This plastic deformation also contributes tolower tablet friability.
In addition, MCC exhibits excellent disintegration properties due to the inherent water-wicking and swelling characteristics of cellulose. Its relatively low bulk density also enables it to be incorporated at higher concentrations in tablet formulations, thereby improving the overall compression characteristics of the powder blend.
Today, MCC remains one of the most widely used and preferred direct compression excipients in pharmaceutical tablet manufacturing.
The different MCC grades and their characteristics are summarized in the table below.
Avicel PH | 101 | 102 | 103 | 113 | 112 | 200 | 301 | 302 | 105 |
|---|---|---|---|---|---|---|---|---|---|
Particle size (µm) | 50 | 90 | 50 | 50 | 90 | 180 | 50 | 90 | 20 |
Tap density (g/cc) | 0.45 | 0.45 | 0.45 | 0.44 | 0.48 | 0.42 | 0.59 | 0.60 | 0.46 |
Moisture (%) | NMT 5.0 | NMT 5.0 | NMT 3.0 | NMT 2.0 | NMT 1.5 | NMT 5.0 | NMT 5.0 | NMT 5.0 | NMT 5.0 |
| Abbreviation: MCC, Microcrystalline cellulose; NMT, Not more than. | |||||||||
Lactose is a disaccharide composed of galactose and glucose, obtained as a by-product of the dairy industry and isolated from cow's milk. Conventional lactose monohydrate has a relatively small particle size, providing good compressibility but poor flowability, making it unsuitable for direct compression. To overcome this limitation, spray-dried lactosewas developed. The spray-drying process increases particle size, thereby significantly improving flowability for direct compression applications.
Lactose is a brittle fracture filler. Therefore, unlike MCC, lactose tends to increase tablet friability. However, this brittle deformation also reduces the sensitivity of the powder blend to lubricants compared with MCC, thereby minimizing the negative effects of lubricant over-mixing.
Due to the presence of an aldehyde group, lactose can undergo the Maillard reaction with APIs containing amino functional groups, resulting in yellow discoloration of tablets during storage.
Among calcium salts, Dicalcium Phosphate (DCP) is the most widely used filler for direct compression. Compared with MCC and lactose, DCP is less hygroscopic and exhibits greater stability at room temperature. Its compressibility is lower than that of MCC but superior to lactose.
Similar to lactose, DCP undergoesbrittle fracture during compression, which increases tablet friability while reducing the sensitivity of powder blends to lubricants. This deformation mechanism also makes both DCP and lactose particularly suitable for bilayer tablet formulations, as the formation of new bonding surfaces enhances interlayer adhesion during the second compression step.
Because DCP has poor aqueous solubility, it is generally not recommended for use at high concentrations in formulations containing poorly water-soluble APIs. In addition, its calcium content allows DCP to serve as a source of calcium supplementation in pharmaceutical formulations.
Other calcium salts commonly used as direct compression fillers include calcium sulphate and calcium carbonate.
Native starch does not possess sufficientcompressibility orflowability for direct compression applications. Therefore, the starch most commonly used for this process is modified starch (Starch 1500).
Modified starch consists of a mixture of intact starch granules and partially hydrolyzed, fractured granules that have subsequently re-agglomerated. This modification provides the compressibility and flowability required for direct compression while retaining the excellent disintegration properties of native starch.
Starch primarily undergoeselastic deformation, making it less dimensionally stable during tablet compression than other direct compression fillers. Furthermore, starch is generally more sensitive to lubricants during blending than lactose or DCP.
Common sugar and polyol excipients used as fillers for direct compression include sucrose, dextrose, sorbitol, and mannitol. These excipients are typically manufactured by spray drying to provide the flowability and compressibility required for direct compression.
These materials generally exhibit good compressibility, enabling the production of tablets with high hardness. However, because many sugars and polyols are hygroscopic, tablets containing high levels of these excipients may soften during storage. Among this group,mannitol has the lowest moisture content and does not undergo the Maillard reaction with APIs containing amino functional groups.
Like lactose and DCP, sugars and polyols primarily undergobrittle fracture during compression. Consequently, they tend to produce tablets with higher friability while making powder blends less sensitive to lubricants during mixing.
Flowability | Compressibility | |||
Water-soluble | Sugars | Lactose, milled | - | + |
Lactose, DC-grade | + | + | ||
Dextrate | + | + | ||
Glucose | - | |||
Saccharose | + | |||
Polyol | Sorbitol | + | + | |
Mannitol | + | + | ||
Xylitol | + | + | ||
Isomalt | + | + | ||
Water-insoluble | Cellulose | Powdered Cellulose, fine | - | + |
Powdered Cellulose, coarse | + | - | ||
Microcrystalline Cellulose, fine | - | ++ | ||
Microcrystalline Cellulose, DC | + | + | ||
Silificied Microcrystalline Cellulose | + | ++ | ||
Calcium Salts | Dibasic Calcium Phosphate | ++ | o | |
Calcium sulphate | Usually used as a filler; poor to moderate binding ability | |||
With the advancement of pharmaceutical formulation and manufacturing technologies, co-processed excipients have been developed to balance and optimize the essential properties required of fillers for direct compression, including compressibility, flowability, and deformation behavior. Among these, microcrystalline cellulose (MCC) is recognized as the filler with the strongest binding capability due to itsplastic deformation mechanism. However, this same deformation behavior prevents the generation of new bonding surfaces during compression, making powder blends more sensitive to the mixing time of lubricants. Therefore, MCC is often co-processed with other excipients to optimize its performance, for example:
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