[0001] This invention relates to a seamless soft capsule, and more specifically, to a seamless
soft capsule having a multicellular structure, and a method of its production.
[0002] A multicellular soft capsule having its inside partitioned by a film was recently
proposed (see Japanese Laid-Open Patent Publication No. l09520/l985). This patent
document states that the multicellular soft capsule is obtained by partitioning a
soft capsule shell composed of an upper film and a lower film into two cells by means
of a partitioning film, and filling different drugs into the two cells. As a result,
two drugs which are not desired to be mixed can be stably included in a single soft
capsule. By using materials having different solubilities and dissolving speeds,
it is possible to cause one part of a single capsule to be released and absorbed in
the stomach and the other part, in the intestines. It is also possible to make one
part of the capsule fast-releasing and the other part slow-releasing.
[0003] Since the proposed multicellular soft capsule is produced by a rotary method or a
flat plate method, the capsule shell has seams. Hence, in spite of the aforesaid advantages,
it has the defect that the filled drugs leak from the seams, or air comes through
the seams to deteriorate the contents oxidatively. Furthermore, by the rotary method
or the flat plate method, it is difficult to produce multicellular soft capsules having
a small size, and moreover, the cost of production becomes high. Furthermore, since
both surfaces of the partitioning film in the aforesaid muticellular soft capsule
are formed of the same material, if a drug to be filled in one of the cells reacts
with the components of the partitioning film, it cannot be included in such a capsule.
[0004] It is an object of this invention to provide a multicellular seamless soft capsule
free from the aforesaid defects.
[0005] Another object of this invention is to provide a simple and inexpensive method of
producing the aforesaid seamless soft capsule, which can easily give capsules of a
small size as well.
[0006] Further objects and advantages of this invention will become apparent from the following
detailed description.
[0007] According to one aspect of this invention, there is provided a soft capsule composed
of a plurality of cells coalesced to each other and filling substances encapsulated
in the individual cells, the wall of at least one of the cells being formed of a material
different from a material forming the wall of at least one of the other cells, and
said capsule being seamless.
[0008] According to another aspect of this invention, the seamless soft capsule of this
invention is produced by a method which comprises
(a) preparing a plurality of composite jet streams each consisting of a stream of
a film-forming liquid substance for forming a cell wall and within said stream of
a film-forming liquid substance a single stream, or a plurality of independent streams,
of a filling substance having flowability, the film-forming liquid substance in
at least one of the composite jet streams being different from the film-forming liquid
substance in at least one of the other composite jet streams,
(b) advancing the plurality of composite jet streams in closely spaced relationship
into and through a stream of a liquid medium substantially incapable of dissolving
the film-forming liquid substance in the flowing direction of the liquid medium stream,
(c) coalescing the adjacent composite jet streams to each other to form a single composite
jet stream in the liquid medium stream,
(d) cutting the single composite jet stream to a predetermined length successively
from its leading end in the liquid medium stream, and
(e) solidifying the cell walls of the resulting soft capsule.
[0009] The capsule and the method of producing it in accordance with this invention will
be specifically described with reference to the accompanying drawings in which:
Figure l is a systematic view, partly in section, of one example of an apparatus
used to practice the method of this invention in its entirety;
Figure 2 is an enlarged end view of a composite nozzle in the apparatus shown in Figure
l;
Figure 3 is an enlarged sectional view of a seamless soft capsule produced in accordance
with this invention by the apparatus of Figure l;
Figure 4 is an end view showing another example of the composite nozzle;
Figure 5 is a sectional view of a seamless soft capsule produced by using the composite
nozzle of Figure 4;
Figure 6 is an end view of still another example of the composite nozzle;
Figure 7 is a sectional view of a seamless soft capsule produced by using the composite
nozzle of Figure 6;
Figure 8 is an end view of yet another example of the composite nozzle;
Figure 9 is a sectional view of a seamless soft capsule produced by using the composite
nozzle of Figure 8;
Figure l0 is an end view of a further example of the composite nozzle;
Figure ll is a sectional view of a soft capsule produced by using the composite nozzle
of Figure l0; and
Figure l2 is an enlarged sectional view of the principal parts of a still further
example of the composite nozzle.
[0010] In Figure l, the reference numeral l represents a tank holding a film-forming liquid
substance A for forming a cell wall; 2, a tank holding a film-forming substance B
which is different from the substance A; 3, a tank holding a filling substance C;
and 4, a tank holding another filling substance D. The tanks l, 2, 3 and 4 are individually
provided with heating means (not shown) for maintaining the substances A, B, C and
D at suitable temperatures for maintaining them flowable. The substances A, B, C
and D are supplied to the tanks l, 2, 3 and 4 respectively. Metering pumps ll, 2l,
3l and 4l are provided for feeding the substances A, B, C and D of the tanks l, 2,
3 and 4 to a composite nozzle 5. The composite nozzle 5, as shown in Figures l and
2, is a duplex nozzle consisting of outside nozzles 5l and 52 having a semielliptical
cross sectional shape resulting from partitioning an elliptical tube by a partitioning
wall 50 at its center and inside nozzles 5a and 5b of a smaller diameter disposed
nearly centrally in the outside nozzles 5l and 52 respectively. The outside nozzles
5l and 52 communicate with the tanks l and 2, and the inside nozzles 5a and 5b, with
the tanks 3 and 4. The composite nozzle 5 faces downwardly along a downwardly flowing
stream of a liquid medium
e within a capsule-forming tank 6.
[0011] The specification of the composite nozzle 5 may be freely changed according, for
example, to the use of the capsule to be produced. For example, for use in making
a capsule used as a medicine, a typical specification is that in Figure 2, the elliptical
tube has an outside long diameter d
ℓ of 5 to 20 mm and an outside short diameter d
s of 3 to l2 mm, and the inside nozzles have an outside diameter of d
i of 2 to 9 mm, and the individual tubes have a thickness of 0.l to 2 mm.
[0012] The liquid medium
e formed, for example, of liquid paraffin is sent to a heat exchanger 72 from a recovery
hopper 7 concurrently acting as a storage tank by means of a pump 7l. In the heat
exchanger 72, it is cooled to a moderate temperature of, for example, about 5°C and
supplied to the upper portion of the capsule-forming tank 6. It becomes a downwardly
flowing stream within the capsule-forming tank 6, and is circulated to the recovery
hopper 7 via a capsule recovery tube 6l. A part of the liquid medium
e is supplied to a pulse stream-forming device 74 by means of a pump 73 from the hopper
7. It is converted to a regular pulse stream in the pulse stream-forming device 74
and supplied to a pulse stream nozzle 8 provided within the capsule-forming tank 6.
[0013] The pulse stream nozzle 8 is a circular nozzle provided immediately below, and coaxially
with, the composite nozzle 5 and having a slightly larger diameter than the diameter
of the elliptical tube of the composite nozzle 5. A pulsating stream of the liquid
medium
e from the nozzle 8 is extruded toward the center of the nozzle 8 from an annular slit
formed within the nozzle 8 in such a manner as to surround a single composite jet
stream formed by the composite nozzle 5
[0014] Film-forming liquid substances A and B for cell wall formation and filling substances
C and D to be filled in a capsule are sent under pressure to nozzles 5l, 52, 5a and
5b constituting the composite nozzle 5 by means of the metering pumps ll, 2l, 3l and
4l. From the nozzle 5l, a composite jet stream composed of a stream of the film-forming
substance A and a single stream of the filling substance C is extruded into, and
along, the downwardly flowing liquid medium flow within the capsule-forming tank 6,
and from the nozzle 52, a composite jet stream composed of a stream of the film-forming
substance B and a stream of the filling substance D is likewise extruded into, and
along, the downwardly flowing liquid medium stream within the capsule-forming tank
6. Since the nozzles 5l and 52 form an integral unit via a partitioning wall 50, the
two composite jet streams extruded as above, nearly simultaneously with their formation,
are coalesced to each other into a single composite jet stream within the downwardly
flowing stream of the liquid medium
e owing to the surface tensions of the film-forming liquid substances A and B.
[0015] The speeds of extruding the composite jet streams, and the flow rate of the downwardly
flowing stream of the liquid medium
e can be varied depending upon, for example, the types of the film-forming liquid substances
forming the composite jet streams, the type of the liquid medium
e and the size of the composite nozzle, and any skilled person in the art would be
able to determine optimum conditions easily by routine experiments. As tentative
standards, it is convenient to adjust the extruding speed of each composite jet stream
to about 4 to 40 m/min., and the flow rate of the downwardly flowing liquid medium
stream to about 5 to 50 m/min.
[0016] The single composite jet stream so formed undergoes impact of the regular pulse
stream of the liquid medium
e from the pulse stream nozzle 8, whereby as shown in Figure l, necks or narrowed parts
are formed at certain intervals beginning with its leading end. The jet stream is
drawn downwardly by the downwardly flowing stream of the liquid medium
e, and successively cut off at the neck portions by the downwardly drawing force. Each
cut droplet
f contains the filling substances C and D encapsulated in the film-forming liquid substances
A and B by the surface tension of the substances A and B, and is formed into a seamless
capsule, which is roundish as a whole, while moving down through the downwardly flowing
stream of the liquid medium
e. The capsules formed advance to the hopper 7 via the recovery tube 6l while being
cooled and solidified. In the hopper 7, the capsules are separated from the liquid
medium
e by a separator 70, supplied to a conveyor 9 provided on one side of the separator
70, and sent to a drying step where they are dried to produce a final product.
[0017] By the method described above, there are obtained unitary seamless soft capsules
l0 in which a cell
a formed of the film-forming substance A and the filling substance C encapsulated in
it is coalesced to a cell
b formed of the film-forming substance B which is different from the substance A and
the filling substance D encapsulated in it, and the cell wall is of a double structure
at the coalesced part, as shown in Figure 3.
[0018] The film-forming substance for cell formation may be any material which can be formed
into a thin film from its melt or solution, and after film formation can be solidified
by cooling and/or drying. Substances usually employed in forming the shell of a soft
capsule may be used in this invention. Examples include film-forming substances composed
of gelatin or gelatin derivatives such as succinic gelatin and incorporated therein,
plasticizers [such as glycerol, sorbitol, propylene glycol and Carbowax (polyethylene
glycol)], essences and flavors (such as peppermint oil, cinnamon oil and strawberry),
dyes (such as yellow No. 4, yellow No. 5, red No. l, blue No. l and copper chlorophyllin),
opacifying agents (such as titanium dioxide and red iron oxide), solubility controlling
agents (such as cellulose acetate phthalate, alkali metal salts of hydroxypropylmethyl
cellulose, alkali metal salts of hydroxymethyl cellulose acetate succinate, alkali
metal salts of alginic acid, alkali metal salts of polyacrylic acid, methyl cellulose,
carboxymethyl cellulose, casein, collagen, agar powder, polyvinyl alcohol and pectin)),
etc. selected as desired. It is generally used as a liquid by dissolving it in water
under heat.
[0019] The filling substance to be encapsulated in each cell of the soft capsule of this
invention can be any drug which does not dissolve the cell wall nor react with the
components of the cell wall. It is preferably liquid when it is to be filled in the
cell in accordance with the method of this invention. Accordingly, when the drug is
a solid, it is desirably filled in a flowable state as a solution, emulsion or suspension.
[0020] According to the method of this invention, by using a combination of two or more
suitable film-forming substances selected from those exemplified above, at least one
of a plurality of cells constituting the resulting soft capsule can have a different
dissolving time in the digestive tract from at least one of the other cells (for example,
whether fast-releasing or slow-releasing), or at least one cell may have different
dissolving characteristic from at least one of the other cells (for example, whether
released and adsorbed in the stomach or the intestines).
[0021] Furthermore, in the present invention, the filling substances to be encapsulated
in the cells may be varied from cell to cell. As a result, a single capsule may be
obtained in which a drug expected to be fast-acting is filled in a fast-dissolving
cell and a drug desired to be slow-acting is filled in a slow-dissolving cell. Alternatively,
a single capsule cell may be obtained in which a drug expected to develop its effect
in the stomach is filled in a cell soluble at the stomach, and another drug expected
to develop its effect in the intestines is filled in a cell soluble at the intestines.
[0022] The shape of the soft capsule l0 can be selected by changing the shape of the end
surface of the composite nozzle 5 on the extrusion side. Some modified examples of
the composite nozzle 5 will be described below.
[0023] The composite nozzle 5 shown in Figure 4 is composed of duplex outside nozzles 5l
and 52 having a cocoon-shaped cross section and smaller-diameter inside nozzles 5a
and 5b disposed coaxially within the outside nozzles 5l and 52 respectively. The capsule
l0 obtained by using this composite nozzle 5 has a cocoon-shaped cross-section as
shown in Figure 5. It is a seamless soft capsule in which filling substances
c and
d are independently encapsulated in cells
a and
b.
[0024] Figures 6 and 8 show other examples of the composite nozzle 5. These nozzles 5 are
each divided into three outside nozzles 5l, 52 and 53 by two or three partitioning
walls 50 and smaller-diameter inside nozzles 5a, 5b and 5c are disposed centrally
in the outside nozzles 5l, 52 and 53 respectively. By simultaneously extruding different
film-forming substances from the outside nozzles 5l, 52 and 53 and filling substances
from the inside nozzles 5a, 5b and 5c with the use of these composite nozzles 5, there
can be produced seamless soft capsules l0 in which the filling substances
c,
d and
h are encapsulated in the cells
a,
b and
g formed from cell walls of different materials, as shown in Figures 7 and 9.
[0025] Figure l0 shows still another example of the composite nozzle 5 in which a large-diameter
tube of an elliptical cross-sectional shape is divided into a large-diameter outside
nozzle 5l and a small-diameter outside nozzle 52 by a partitioning wall 50 at a site
about l/3 as viewed from one end surface of the tube, inside nozzles 5a and 5b having
a smaller diameter are disposed in the large-diameter outside nozzle 5l in spaced-apart
relationship, and an inside nozzle 5c having a smaller diameter is disposed centrally
in the small-diameter outside nozzle 52.
[0026] When the composite nozzle 5 shown in Figure l0 is used, different film-forming substances
and different filling substances are simultaneously extruded along the stream of the
liquid medium in the apparatus shown in Figure l from the outside nozzles 5l and 52,
and the inside nozzles 5a, 5b and 5c, respectively. Thus, a composite jet stream containing
two independent streams of the filling substances
c and
h and a composite jet stream containing one stream of the filling substance
b are formed simultaneously in the capsule-forming tank 6 as in Figure l, and coalesced
into a single composite jet stream. The single composite jet stream is successively
cut in a predetermined size from its leading end in the flowing direction by the action
of the pulsating flow of the liquid medium.
[0027] The soft capsule l0 produced in this way is a seamless soft capsule composed of a
unitary structure of a cell
a and two filling substances
c and
h independently encapsulated in it and a cell
b and one filling substance
d encapsulated in it, as shown in Figure ll.
[0028] The soft capsule l0 shown in Figure ll and the method of production using the composite
nozzle shown in Figure l0 give a caspsule in which two filling substances
c and
h are independently encapsulated in a cell having a cell wall of the same material.
Hence, they are beneficial when different drugs which are to be released simultaneously
from one cell
a but should not be mixed beforehand are used as the filling substances
c and
h.
[0029] Even when the outside nozzles 5l and 52 of the composite nozzle 5 are not unitary
but are slightly spaced from each other as shown in the embodiment given in Figure
l2, composite jet streams extruded separately from the nozzles 5l and 52 are coalesced
into a single composite jet stream by the pulsating flow of the liquid medium, and
cut to a predetermined length from its leading end in the flowing direction. Hence,
the method of this invention can be practiced in the same way by using the composite
nozzle 5 shown in Figure l2.
[0030] The single composite jet stream formed along the flow of the liquid medium
e may be cut to a predetermined length from its leading end in the flowing direction
by intermittently increasing the speed of the downwardly flowing stream of the liquid
medium
e, and intermittently pulling off the composite jet stream downwardly by the quickened
downwardly flowing liquid stream, instead of applying a pulsating flow of the liquid
medium
e sideways to the composite jet stream in the embodiments described above. By this
alternative procedure, too, the single composite jet stream can be cut successively
to a predetermined length.
[0031] According to this invention, one capsule contains a plurality of cells whose cell
walls are made of different materials. Hence, the present invention is suitable for
filling both a substance to be released and absorbed in the stomach and a substance
to be released and absorbed in the intestines, or at least two substances having different
dissolving times, in a separated state in a single capsule. Since the soft capsule
of the invention is seamless, the filled substances can be retained stably while preventing
their deterioration by oxidation or otherwise. According to the method of this invention,
capsules of any desired sizes can be produced, and capsules having a smaller size
than in the prior art can be easily produced at low cost.
[0032] The following Example illustrates the present invention more specifically.
EXAMPLE l
[0033] Referring to Figure l, a film-forming substance A was filled in tank l, and a film-forming
substance B, in tank 2. These film-forming substances A and B were extruded from
composite nozzle 5 having a outside long diameter (d
ℓ) of l3 mm, an outside short diameter (d
s) of 9 mm and a thickness of l mm (Figure 2) by metering pumps ll and 2l. The amount
of each of the film-forming substances A and B was 65.7 g/min.
[0034] In the meantime, a filling substance C was filled in tank 3, and another filling
substance D, in tank 4. The filling substances C and D were extruded from nozzles
5a and 5b having an outside diameter (di) of 3 mm, an inside diameter of 2 mm and
a thickness of 0.5 mm (Figure 2) by metering pumps 3l and 4l. The amount of each of
the filling substances extruded was 36 g/min. Composite jet streams composed of the
film-forming subtances A and B and the filling substances C and D flowed at a rate
of l0 meters/min.
[0035] A paraffin oil as a cooling medium
e within vessel 7 and heat-exchanger 72 was maintained at 3°C, and flowed downwardly
in capsule-forming tank 6 at a flow rate of l5 m/min. A pulsating flow of the paraffin
oil generated from pulse flow generator 74 was extruded at equal time intervals from
pulse flow nozzle 8 accurately l5 times per second.
[0036] Within the capsule-forming tank, capsules were formed at a rate of l5 per second
at intervals of about ll mm. After drying, each of the caspsules had a long diameter
of 8 mm and a short diameter of 6 mm, and the amount of each of the filling substances
was 40 mg per capsule.
[0037] The film-forming substance A is a solution consisting of 20 parts of gelatin, 5 parts
by weight of glycerol, 8 parts by weight of sorbitol and 67 parts by weight of purified
water which was maintained at about 60°C.
[0038] The film-forming substance B was a solution consisting of l8 parts by weight of gelatin,
5 parts by weight of glycerol, 2.5 parts by weight of sodium alginate and 74.5 parts
by weight of purified water which was maintained at about 60°C.
[0039] The filling substances C and D were solutions composed of different drugs which were
maintained at about 25°C.
[0040] By the above procedure, there was produced a seamless soft capsule l0 which contained
a core
c composed of the filling substance C encapsulated in a gastric-soluble film
a composed of the film-forming substance A and a core
d composed of the filling substance D encapsulated in an enteric-soluble film
b independently from each other, with the film portion separating the core
c from the core
d being of a double structure.
[0041] When the resulting soft capsule l0 was immersed in the first solution (gastric juice)
stipulated in the Revised Method of Testing Disintegration in accordance with Japanese
Pharmacopoeia, the film
a dissolved in several minutes to release the core
c, whereas the film
b did not dissolve for more than 2 hours.
[0042] When the soft capsule l0 was immersed in the second solution (intestinal fluid) in
the Revised Method of Testing Disintegration in accordance with Japanese Pharmacopoeia,
both the films
a and
b dissolved within 2 to 3 minutes.
EXAMPLE 2
[0043] In the same way as in Example l, film-forming substances A and B were extruded from
a composite nozzle having an outside long diameter (D
ℓ) of 7.5 mm, an outside short diameter (D
s) of 3.5 mm and a thickness of 0.5 mm. The amount of each of the film-forming substances
A and B extruded was 2l.9 g/min.
[0044] In the meantime, filling substances C and D were extruded extruded from nozzles 5a
and 5b having an outside diameter (d
i) of l mm and a thickness of 0.l mm. The amount of each of the substances C and D
extruded was l8.6 g/min. The speed of the composite jet stream at this time was 6
m/min. A paraffin oil was used as a cooling medium
e and caused to flow in capsule-forming tank 6 at a rate of 22.5 m/min.
[0045] A pulsating flow of the paraffin oil generated from the pulse stream generator 74
was extruded from pulse stream nozzle 8 at equal time intervals accurately 50 times
per second.
[0046] In capsule-forming tank 6, fifty capsules were formed per second at intervals of
about 7.5 mm. After drying, each of the capsule had a long diameter of 3.5 mm and
a short diameter of 2.5 mm. The amount of each of the filling substances C and D was
about 6.2 mg.