IE84449B1 - Contraceptive packages containing oestrogen and progestin - Google Patents
Contraceptive packages containing oestrogen and progestin Download PDFInfo
- Publication number
- IE84449B1 IE84449B1 IE2003/0160A IE20030160A IE84449B1 IE 84449 B1 IE84449 B1 IE 84449B1 IE 2003/0160 A IE2003/0160 A IE 2003/0160A IE 20030160 A IE20030160 A IE 20030160A IE 84449 B1 IE84449 B1 IE 84449B1
- Authority
- IE
- Ireland
- Prior art keywords
- unit dosages
- package
- estrogen
- progestin
- norethindrone
- Prior art date
Links
Description
CONTRACEPTIVE PACKAGES CONTAINfié; Efi.AND PROGESTIN This invention is concerned with a contraceptive package which employs a combination of estrogen and progestin and wherein a short period of relatively ‘ dominant cstrogenic activity alternates with a short period of relatively dominant progestagenic activity.
In the luteal phase of the menstrual cycle, serum progesterone levels increase and progesterone mediated secretory changes occur in the uterine endometriumi iTha presence of progesterone receptors has been shown to be a necessary prerequisite for progesterone action in the endometrium (see Walters, M.R. and Clark, J.H.
Relationship between the quantity of progesterone receptors and the antagonism of estrogen~induced uterotropic response Endocrinology l0S:382, 1979) and it is well documented that estrogen priming in the follicular phase of the cycle is responsible for the development of both estrogen and progesterone receptors (see Bayard, F., Damilano, S., Robel, P. and Baulien, E.E. Cytoplasmic and nuclear estradiol and progesterone receptors in human endometrium, J. Clin Endocrinol Metab. 46:635. 1978). On the other hand, progesterone exerts a negative feedback effect on its own receptor (see Tseng, L. and Gurpide, E.
Effects of progestins on estradiol receptor levels in human endometrium, J. Clin Endocrinol Metab. 41:402. 1975) and also acts to downregulate endometrial estrogen receptors possibly by induction of an estrogen receptor regulatory factor (see Leavitt. W.W.. okulicz, W.C., Mccracken, J.A., Schramm, W.S. and Robidoux, W.F. Jr.
Rapid recovery of nuclear estrogen receptor and oxytocin receptor in the ovine uterus following progesterone withdrawal, J. Steroid Biochem. 22:686. 1985).
These physiologic changes can be reproduced pharmacologically as shown by the induction of estrogen and progestin receptors in postmenopausal women’by the administration of ethinyl estradiol (see Kreitmann, B., bugat, R. and Bayard, F.
Regulation of the Progesterone Receptor Concentration in Estrogen and Progestin Human Endometrium. J. Clin Bndocrinol Metab. 49:926. 1979).
Tamoxifen, Medroxy—progesterone Acetate, and Their Neumannova et al (see Short—Term Effects of Combination on Receptor Kinetics and l7beta-Hydroxysteroid Dehydrogenase in Human Endometrium, Obstet. Gynecol. 66:695. 1985) have also demonstrated that administration of medroxy—progesterone acetate in estrogenjprimed women decreases the concentration of endometrial progestin receptors while at the same time increasing the activity of 17beta—hydroxysteroid dehydrogenase, an enzyme which is responsible for metabolism of estradiol to the less potent estrone.
A complex interaction-occurs between estrogen and progesterone or progestin in the human endometrium with the progestins acting as anti—estrogens. Estrogen and progestin interactions are also dynamic. For example, estrogen administration increased the concentration of both estrogen and progestin receptors to peak levels, 7 times above baseline, within 3 days (see Ekert, R.L, and Katzenellenbogen, B.S. Human Endometrial Cells in Primary Tissue Culture: Modulation of the Progesterone Receptor Level by Natural and Synthetic Estrogens In Vitro, J. Clin Endocrinol Metab. 52:699. 1981). receptor concentrations occurred within one day.
A three—fo1d increase in Normal physiologic levels of progesterone in the first 3 days of ‘the luteal phase resulted in a rapid and significant decrease in estrogen receptor number (see Kreitmann—Gimba1, B., Bayard, F., Nixon, W.B. and Hodgen, G.D. Patterns of Estrogen and Progesterone Receptors in Monkey Endometrium During the Normal Menstrual Cycle, Steroids 35:471. 1980). progesterone to cynomolgous macaques significantly Exogenous administration of suppressed estrogen receptors within 1 to 2 days (see West, N.B. and Brenner, R.M.
Suppression of Bstradiol Receptors in Cynomolgous Macaque Progesterone—Mediated Cervix, Endometrium and Oviduct During Sequential Estradiol-Progesterone Treatment, J. Steroid Biochem. 22:29, 1985) and medroxy~progesterone acetate was able to significantly suppress progestin receptor levels in premenopausal women within 4 hours (see Neumannova M-, Kauppila, A., Kivinen, S. and Vihko, R. Short—Term Effects of Tamoxifen, Medroxy—progesterone Acetate, and Their Combination on Receptor Kinetics and l7beta~Hydroxyster0id Dehydrogenase in Human Endometrium, Obstet. Gynecol. 66:695. 1935). withdrawal in the presence of constant estrogen levels has In contrast, progesterone been shown to result in rapid (6 to 12 hours) recovery of nuclear estrogen receptors in sheep endometrium, associated with an estrogen induced biological response, i.e. production of oxytocin receptors (see Leavitt, W.W., Okulicz, W.C., Mccracken, J.A., Schramm, W.S. and q Robidoux, W.F. Jr. Rapid recovery of nuclear estrogen receptor and oxytocin receptor in the ovine uterus "M. and Soloff, M.S. following progesterone withdrawal. J. Steroid Biochem. 22:686, 1985). 1A similar phenomenon occurs in pregnant guinea pigs when estrogen levels rise relative to progesterone levels prior to parturition (see Alexandrova, Oxytocin receptors and parturition in the guinea pig, Biol. Reprod. 22:l106, 1980).
Therefore. it appears that estrogen acts to stimulate both estrogen and progestin receptor." concentrations and to induce sensitivity of the endometriun to both estrogen and progestin. Progesterone or progestin exerts an anti—estrogen action by decreasing estrogen receptors and by increasing l7beta—hydroxysteroid dehydrogenase activity in endometrial tissue. However, it appears that the stimulatory effects of progesterone on human endometrial function are of short duration probably because of a self—provoked downregulation of progestin receptors and estrogen receptors. For example, the effect of progesterone on l7beta—hydroxysteroid dehydrogenase peaks at 3 days and is then followed in 2 to 3 weeks by suppression of the enzyme (see Whitehead, M.I., Townsend, P.T.. Pryse-Davies, J. et al. Effects of estrogens and progestins on the biochemistry and morphology of the postmenopausal endometrium, N. Engl, J. Med 305:l599, ).
Currently on the market there are a number of contraceptive formulations which can be classified readily into several general types. The first of these are known as monophasic formulations. These contain a constant amount of estrogen and progestin. Nuisance side effects with these pills depend on the balance between the _ 5 _ estrogen and progestin component of the pill. For example, with a relatively dominant progestin pill, the formulation will, over time, result in a depletion of both estrogen and progestin receptors. The result which might be expected is an understimulated or atrophic endometrium which may eventually cause either on—pill amenorrhea or breakthrough bleeding or spotting due to poor-‘ epithelialization. On the other hand, with a relatively dominant estrogenic preparation, it is possible that prolonged use could result in endometrial growth with the development of unsupported fragile stroma and subsequent spotting or breakthrough bleeding.
Newer formulations known as triphasics have varying levels of estrogen and progestin; in most cases consisting of relatively constant levels of estrogen with a step—wise increase in progestin throughout the cycle. This pattern of estrogen and progestin administration results in a relatively dominant estrogenic formulation at the beginning of the package with increasing progestagenic activity toward the end of the package. Endometrial stability may be better with these pills since the estrogenic activity at the beginning of the package induces both estrogen and progestin receptors making the endometrium sensitive to the increased levels of progestin towards the end of the package. The progestin activity produces denser, more stable endometrial stroma although the relatively long duration of progestin exposure, toward the end of the package, may still lead to decreased estrogen and progestin receptors and activity. A significant problem with this type of formulation is the low dose of steroids at the beginning of the package which makes these pills vulnerable to drug interactions or missed pills which may lead to breakthrough ovulation.
The beginning of the package is the critical time in terms of breakthrough ovulation since the user has‘just completed a 7 day drug~free interval during which follicular development may begin, Even if pregnancy does not occur, breakthrough ovulation can lead to poor cycle control. p Estrogen replacement therapy is warranted in menopausal women for several reasons. Estrogen replacement will relieve hot flushes and this relief of flushes and night sweats improves sleep patterns and contributes to the patient's general feeling of we11—being (see Campbell S., Whitehead M.I. Estrogen therapy and the In Clinics in Obstetrics and Gynecology: Volume 4. Edited by R.B.
Greenblatt, J.W.W. Studd, London, W.B. Saunders, 1977, menopausal syndrome.
The Menopause. pages 31-47: Erlik Y., Tataryn I.V., Meldrum D.R. et al.
Association of waking episodes with menopausal hot flushes. JAMA 24:174l, 1981). protects against postmenopausal loss of calcium from the Estrogen replacement skeleton. especially from vertebral bodies, preventing crush fractures and loss of body height (see Lindsay R., Prevention of spinal Lancet 2:llS1, Hart D.M.. Forrest, C. et al. osteoporosis in oophorectomized women. ). estrogen therapy is also associated with a reduction in Several studies have now reported that l0ng—term the incidence of classical 0ste0porotic.fractures of the forearm and hip (see Hutchinson, T.A., Polansky, S.M., Postmenopausal estrogens protect against Lancet 2:706, 1979: Finestein, A. fractures of hip and distal radius.
Paganini-Hill, A., Rose. R.K.. Gerkins, V.R., et al. A case control study of menopausal estrogen therapy in hip fractures. Annals of Internal Medicine 95:28, 1981; Weiss N.S., Ure C.L.. Ballard J.H. et al. Decreased risk of fractures of the hip and lower forearm with postmenopausal use of estrogen. New England Journal of Medicine :1195, 1980). estrogen use is the reduction of the risk of death from Another beneficial effect of long-term ischemic heart disease probably mediated by changes in blood lipoprotein concentrations (see Ross R.K., Paganini—Hi1l A., Mack T.M. et al. Menopausal estrogen therapy and protection from ischemic heart disease.
Lancet 1:858, 1981). shown to improverthe vascularity and health of the vaginal Estrogen replacement has also been mucosa and urinary tract. The only major risk factor associated with estrogen administration in the doses required to relieve menopausal symptoms, is hyperstimulation of the endometrium and an increased risk of endometrial cancer (see Cramer D.W., Knapp R.C. Review of epidemiologic studies of endometrial cancer and exogenous estrogen. Obstetrics and Gynecology 54:521. 1979; Shapiro S., Coughman D.W., Sloan D.. et al. Recent and past use of conjugated estrogens in relation to adenocarcinoma of the endometrium. New England Journal of Medicine 303:485, 1980).
Estrogens predispose to cancer of the endometrium by stimulating cell mitosis and proliferation and increasing the levels of DNA synthesis and nuclear estradiol receptors in the endometrium (see Whitehead M,1,, Townsen P.T., Pryce~Davies J., et al. Effects of estrogens and progestins on the biochemistry and I 4' morphology of the postmenopausal endometrium. New England Journal of Medicine 305:l599, 1981; Whitehead M.I., Townsen P.T., Pryce-Davies J., et al. Actions of progestins on the morphology and biochemistry of the endometrium of postmenopausal women receiving low dose estrogen therapy. American Journal of Obstetrics and Gynecology. 142:79l. 1982).
The addition of a progestin for 13 days each month has been demonstrated to protect the endometrium from these stimulatory effects of estrogen (see Gambrill R.D., Jr., Massey F.M., Castaneda et al. Use of the progestogen challenge test to reduce the risk of endometrial cancer.
Obstetrics and Gynecology 55:732. 1980; Studd J.W.W., Thom M.H., Patterson h.E.L., Wade—Evans T. The prevention and treatment of endometrial pathology in postmenopausal women receiving exogenous estrogens. In: Pasetto N., Paoletti The menopause and .1980).
R., Armbus J.L.. Editors. postmenopause. Lancester MPT Press.
The addition of a progestin protects the endometrium by reducing nuclear estradiol receptor concentration and thereby decrease nuclear estrogen bioavailability resulting in an antimitotic effect and lowering DNA synthesis. Progestins also increase the activity of endometrial estradiol~l7beta—dehydrogenase. an enzyme which metabolize estradiol to estrone, a less potent estrogen (see Whitehead M.I., Townsen P.T., Pryce-Davies J. Effects of estrogens and progestins on the biochemistry and morphology of the postmenopausal endometrium. New England Journal of Medicine. 305:l599, 1981; King R.J.B., Townsen P.T., Sittle N.C., et al. _ 9 _ Regulation of estrogen and progesterone receptor levels in epithelium and stroma from pre and postmenopausal endometria. Journal of Steroids and Biochemistry. 16:21, 1982; Gurpide E. Enzymatic modulation of hormonal action °at the target tissue. Journal of Toxicology and Report. New York: Pitman, 1974). Since the side effects _ protection. _ lo _ of progestins appear to be dose dependent, the dose of progestin used with postmenopausal estrogen replacement should be the minimum necessary to achieve endometrial (see Padwick M.L.. Pryce—Davies J., Whitehead M.I. A simple method for determining the optimal dosage of progestin in postmenopausal women receiving estrogens.
New England Journal of Medicine 3l5:930; 1986).
The biological effects of both estrogen and progestin in target tissues such as the endometrium are dependent on the levels of estrogen and progestin"_ receptors. Both estrogen and progestins exert at modulating influence on the levels of their own receptors. Fov'example, in the luteal phase of the menstrual cycle. serum progesterone levels increase and progesterone mediated secretory changes occur in the uterine endometrium. The presence of progesterone receptors has been shown to be a necessary prerequisite for progesterone action in the endometrium (see Walters M.R. and Clark J.H. Relationship between the quantity of progesterone receptors and the antagonism of estrogen—induced uterotropic response. Endocrinology l05:382, 1979) and it is well documented that estrogen priming in the follicular phase of the cycle is responsible for the development of both estrogen and progesterone receptors (see Bayard F., Damilano 5., Robel P. and Baulieu E.E. Cytoplasmic and nuclear estradiol and progesterone receptors in human endometrium. Journal Clinical Endocrinology and Metabolism 46:635. 1978). On the other hand, progesterone exerts a negative feedback effect on its own receptor (see Tseng L. and Gurpide E.
Effects of progestins on estradiol receptor levels in _ 11 ; human endometrium. ‘Journal Clinical Endocrinology and Metabolism 41:402. 1975) and also acts to downregulate endometrial estrogen receptors possibly by induction of an estrogen receptor regulatory factor (see Leavitt W.W., Okulicz W.C.. Mccracken J.A., Schramm W.S. and Robidoux W.F., Jr. Rapid recovery of nuclear estrogenireceptor and oxytocin receptor in the ovine uterus following progesterone withdrawal. 'Journal Steroid Biochemistry :636. 1935).
These physiologic changes can be reproduced pharmacologically as shown by the induction of estrogen and progestin receptors in postmenopausal women by the administration of ethinyl estradiol (see Kreitmann B., Bugat R. and Bayard F. Estrogen and progestin regulation of the progesterone receptor concentration in human endometrium. Journal Clinical Endocrinology and Metabolism 49:926. 1979).
Short—tgerm effects of tamoxifen, medroxyprogesterone Neumannova et al. (see acetate. and their combination on receptor kinetics and l7beta—hydroxysteroid dehydrogenase in human endometrium.
Obstetrics and Gynecology 66:695. 1985) have also demonstrated that administration of medroxyprogesterone acetate in estrogen~primed women decreases the concentration of endometrial progestin receptors while at the same time increasing the activity of l7beta—hydroxysteroid dehydrogenase, the enzyme which is responsible for metabolism of estradiol to the less potent estrone.
A complex interaction occurs between estrogen and progesterone or progestin in_the human endometrium with _ 12 _ the progestins acting as anti—estrogens. Estrogen and progestin interactions are also dynamic. For example, estrogen administration increased the concentration of both estrogen and progestin receptors to peak levels, 7 ‘times above baseline, within 3 days (see Ekert R.L. and Katzenellenbogen B.S. Human endometrial cells in primary tissue culture: Modulation of the progesteronéireceptor level by natural and synthetic estrogens in vitro.
Journal Clinical Endocrinology and Metabolism 52:699. 1981). A three—fold increase in receptor concentrations occurred within one day. Normal physiologic levels of progesterone in the first 3 days of the luteal phase resulted in a rapid and significant decrease in estrogen receptor number fsee Kreitmann-Gimbal B., Bayard F., Nixon w.E. and Hodgen G.D. Patterns of estrogen and progesterone receptors in monkey endometrium during the normal menstrual cycle. Steroids 35:471. 1980).
Exogenous administration of progesterone to cynomolgous macaques significantly suppressed estrogen receptors within 1 to 2 days (see West N.B. and Brenner R.M.
Progesterone—mediated suppression of estradiol receptors in cynomolgous macaque cervix, endometrium and oviduct during sequential estradio1—progesterone treatment.
Journal Steroid Biochemistry-22:29, 1985) and medroxyprogesterone acetate was able to significantly suppress progestin receptor levels in premenopausal women within 4 hours (see Neumannova M., Kauppila A., Kivinen S. and Vihko R. Short~term effects of tamoxifen, medroxyprogesterone acetate, and their combination on receptor kinetics and l7beta—hydroxysteroid dehydrogenase in human endometrium, Obstetrics and Gynecology 66:695.
). In contrast, progesterone withdrawal in the ...']_3... presence of constant estrogen levels has been shown to result in rapid (6 to 12 hours) recovery of nuclear estrogen receptors in sheep endometrium, associated with an estrogen induced biological response, i.e. production of oxytocin receptors (see Leavitt W.W., Okulicz W.C., Mccracken J.A.. Schramm W.S. and Robidoux W.F.. Jr. Rapid recovery of nuclear estrogen receptor and oxytocin receptor in the ovine uterus following progesterone withdrawal. Journal Steroids and Biochemistry 22:686. 1985). A similar phenomenon occurs in pregnant guinea pigs when estrogen levels rise relative to progesterone levels prior to parturition (Biology and Reproduction 22:llO6, 1980).
Therefore, it appears that estrogen acts to stimulate both estrogen and progestin receptor concentrations and to induce sensitivity of the endometrium to both estrogen and progestin. Progesterone or progestin exerts an anti—estrogen action by decreasing the concentration of estrogen receptors and by increasing 17beta—hydroxysteroid dehydrogenase activity in endometrial tissue. However, it appears that the stimulatory effects of progesterone on human endometrial function are of short duration probably because of a self-provoked downregulation of progestin receptors (see Neumannova M., Kauppila A., Kivinen S. and Vihko R.
Short—term effects of tamoxifen, medroxyprogesterone acetate, and their combination on receptor kinetics and l7beta—hydroxysteroid dehydrogenase in human endometrium, Obstetrics and Gynecology 66:695. 1985; Whitehead M.I., Townsen P.T., Pryce~Davies J. et al. Effects of estrogens and progestins on the biochemistry and morphology of the _14... postmenopausal endometrium. New England Journal of Medicine. 3o5:1s9v9, 1931). For example, the effect of progesterone on 17beta—hydroxysteroid dehydrogenase peaks at 3 daye and is then followed in 2 to 3 weeks by P.T., Pryce-Davies J. et al. Effects of estrogens and progestins on the biochemistry and morphology of the postmenopausal endometrium. New England Journal of Medicine 305:l599, 1981).
The present invention provides a product containing estrogen and progestin as a combined preparation for administering a plurality of unit dosages of a relatively dominant estrogen activity combination and for administering a plurality of unit dosages of a relatively dominant progestin activity combination. In general, in the product the unit dosages are arranged for the administration alternately of a number of unit dosages of the relatively dominant estrogen activity combination and of a number of unit dosages of the relatively dominant progestin activity combination, each said number of unit dosages preferably consisting of 1 to 5 unit dosages, more preferably 2 to 4 and most preferably 3 unit dosages, the product preferably being presented in the form of packages each containing 20 to 35 unit dosages.
The product is for administration to females of child bearing age as a contraceptive.
The present invention provides a contraceptive package for use by a female of child bearing age for contraceptive purposes, which comprises a total of twenty to thirty-live unit dosages, each unit dosage for consecutive daily administration; each unit dosage comprising a combination of estrogen and progestin selected from a relatively dominant estrogen activity combination and a relatively dominant progestin activity combination, with a plurality of dominant estrogen activity dosages being alternated with a plurality of dominant progestin dosages; and each unit dosage also comprising a pharmaceutically acceptable inert carrier when required. ..16...
In a preferred form of the invention, dominant estrogen activity dosages are used to begin and end the twenty to thirty~five unit dosages.
In another aspect of the invention. there may be included an additional seven or four unit dosages in the pharmaceutical preparation which may comprise a placebo or any other hormone-free agent. These are usually taken at the completion of the twenty—one or tHenty—four unit dosages.
Thus, in the present disclosure, a formulation is described that is better able to protect the endometrium against the estrogen related risk of endometrial hyperplasia and adenocarcinoma with a lower dose of _ 17 _ progestin by administering progestin for a short period of time a1ternating,with a short period of absent or reduced progestin. It has been demonstrated that a protective effect of progestin is related to the duration of "administration with 12-13 days per month appearing to be the minimum required for greatest protection. The present formulation administers a low dose of progestin intermittently throughout the month for a minimum of 15 days exposure. - 13 _ The contraceptive formulation of the present invention results in better cycle control. Intermittent increases in estrogen activity stimulate endometrial growth and progestin receptors. This makes the endometrium more sensitive to subsequent progestin activity which limits growth by decreasing estrogen receptors and increasing 17beta- hydroxy—steroid dehydrogenase. Interaction of progestin with progestin receptors induces secretory changes in the endometrium which results in a denser stroma and endometrial stability. A return to relatively dominant estrogenic activity then again stimulates estrogen and progestin receptors and renews endometrial sensitivity to progestin. This push/pull activity keeps endometrial activity within a narrow range depending on the number of days of estrogenic and progestagenic activity.
The design of the present contraceptive invention avoids low levels of steroids present during the first part of the triphasic package which makes the triphasic _]_9.. formulations more sensitive to drug interactions and missed pills. As a result, less pill failures in terms of pregnancy occur and also cycle control is better because of fewer breakthrough ovulations.
The current contraceptive formulation allows better progestational effect with less progestin. with the current formulation the dose of progestin is significantly decreased compared to most monophasic preparations and a total steroid dosage is achieved which is lower than that of the present triphasics and yet the present formulation offers better cycle control and efficacy. A reduction in progestin dosage results in less negative impact on HDL cholesterol levels. HDL cholesterol has been shown to be protective against development of atherosclerosis and its concentration is increased by estrogen and decreased by progestin.
Alternatively, the reduction in progestin dose possible with the subject contraceptive formulation results in a pill that also has good estrogenic effect.
Therefore, this formulation is a good one for the management of acne, oily skin and hirsutism and also has less chance of on~pill amenorrhea.
It is thought that the current contraceptive formulation is better able to inhibit ovulation with lower doses of steroids, since it has been demonstrated that estrogen priming increases progesterone receptor concentration in the hypothalamus and anterior pituitary gland in a number of animal species (see Katzenellenbogen, B.S. Dynamics of steroid hormone receptor action, Annual _ 20 _ Rev. Physiol- 42:17, 1980). Therefore, by allowing intermittent estrogenic priming to occur by administering the pgeparation of estrogen and progestin in the alternating fashion of the present method. it is possible to potentiate the central negative feedback actions of both prégestin and estrogen. _ 21 - The estrogens which may be employed as a component in the regimens of this invention may be any of those conventionally available. Typically, the estrogen may be selected from the group comprising synthetic and natural estrogens. The synthetic estrogens may be selected from, for example, ethinyl estradiol. mestranol and quinestranol. Particularly of interest are l7alpha~ethiny1estradio1 and esters and ethers thereof.
The preferred estrogen is l7alpha—ethiny1estradi0l. The natural estrogens may include, for example, conjugated equine estrogens, estradio1—17beta, estradiol valerate, estrone, piperazine estrone sulphate, estriol, estriol succinate, desogestrel and polyestrol phosphate.
The progestin Component may be any progestationally active compound. Thus, the progestin may be selected from progesterone and its derivatives such as, for example, l7—hydroxy progesterone esters, l9-nor-l7~hydroxy progesterone esters, 17alpha—ethinyltestosterone and derivatives thereof, l7a1pha-ethinyl—l9—nor-testosterone and derivatives thereof, norethindrone, norethindrone acetate. ethynodiol diacetate, dydrogesterone, medroxy—progesterone acetate, norethynodrel, _ 22 _ allylestrenol, lynoestrenol. fuingestanol acetate, medrogestone, norgestrienone, dimethiderome, ethisterone, cyproterone, lavo—norgestrel, d-norgestrel, dl—norgestrel, d—l7alpha—acetoxy—l3beta—ethyl—17a1pha-ethinyl—gon—4—en— 3—one oxime, cyproterone acetate, gestodene and norgestimate. Preferred progestins are norethindrone, d-norgestrel and norgestimate.
In a preferred form of the invention, the plurality of dosages may comprise from one to five unit dosages, but preferably three unit dosages are employed. Thus, in a preferred form of the invention, three unit dosages of relatively dominant estrogen activity are alternated with three unit dosages of relatively dominant progestin activity and so Sh for a total of twenty—one or twenty—four unit dosages. Four or seven unit dosages which are free of hormone are included to approximate the natural twenty—eight day menstrual cycle of the female.
These pills may comprise a placebo or any other hormone—free agent. Examples of suitable alternative agents include vitamins, such as iron supplements. Where the total unit dosages do not comprise multiples of three, an appropriate number of hormone—free unit dosages may be included to make up the total required units.
Generally, the quantities of estrogen and progestin incorporated in the formulation of the invention are dependent on the type of estrogen or progestin selected.
However. the quantities employed are generally less than those used in the currently marketed formulations for reasons mentioned earlier. In the present formulation, the estrogen level is kept constant, while the progestin level is adjusted up or down to produce the required estrogen or progestin dominance. The selection of _ 23 _ quantity is dependent on the type of estrogen or progestin since each hormone has its own specific activity.
» Typically for the contraceptive formulation, the amount of estrogen per unit dose may range from a minimum of about 0.020 mg. to a maximum of about 0.050 mg. of l7a1pha—ethinylestradio1 or its equivalent dosage in other synthetic or natural estrogens and the amount of progestin per unit dosage may range from a minimum of about 0.00 mg. of norethindrone or its equivalent in a synthetic or natural progestin to a maximum of about 1.00 mg. Thus, the maximum amount of hormone over the 21 days of administration may range from about 6.72 mg. to about .05 mg.
Some preferred combinations include the following: . Three unit dosages of 0.035 mg. of 17a1pha— ethiny1—estradio1 with 0.5 mg. of norethindrone. alternating with three unit dosages of 0.035 mg. of l7a1pha—ethinylestradiol with 0.75 mg. of norethindrone for a total of 7 groups of three, beginning and ending with the 0.5 mg. of norethindrone combination.
. Three unit dosages of 0.035 mg. of l7alpha—ethiny1~ estradiol and 0.5 mg. of norethindrone alternating with three unit dosages of 0.035 mg. of 17alpha—ethinyl— estradiol and 0.35 mg. of norethindrone, beginning and ending with the 0.5 mg. of norethindrone combination. _ 24 _ The above combinations may also be grouped into three's and four's. starting with either three or four day groups and ending with the other.
For the normal replacement therapy it may be advantageous for the groups of dominant estrogen activity combination to comprise three units dosage and the dominant progestin activity combination to comprise two units dosage; or for the groups of dominant estrogen activity combination to comprise two units dosage and the dominant progestin activity combination to comprise three units dosage; or for the groups of dominant estrogen activity combination to comprise three units dosage and the dominant progestin activity combination to comprise four units dosage; or for the , ,_,.V:v. groups of dominant estrogen activity combination to comprise four units dosage and the dominant progestin activity combination to comprise three units dosage.
The formulations of the invention may be administered orally, preferably in tablet form, parenterally, sublingually, transdermally, intravaginally, intranasally or buccally. The method of administration determines the types of estrogens and progestins useful in the formulation, as well as the amounts per unit dosage.
Methods for transdermal administration including the associated methods for manufacturing such systems are well known in the art. In this connection. reference may be had to u.s. Patents Nos. 4,752,478, 4,685,911, ,438,139 and 4,291,014.
Generally speaking, the formulations are prepared according to conventionally known procedures in accordance V ,._. . J44: _ 25 _ with the method of administration.» Thus, the active ingredients are prepared according to known methods in a pharmaceutically acceptable form for administration.
These ingredients, in their required quantities are combined with the appropriate pharmaceutical carriers such as additives, vehicles and/or flavour ameliorating substances. These substances may be referred to as diluents, binders and lubricants. Gums, starches and sugars are also common terms. Typical of these types of substances or excipients are pharmaceutical grades of mannitol, lactose starch, magnesium stearate. sodium saccharin, talcum, cellulose, glucose, sucrose, magnesium carbonate and the like. The active ingredient(s) may comprise from abgut 0.01% by weight to about 99.99% by weight of the total formulation and the remainder comprises the pharmaceutically acceptable carrier. The percentage of active ingredient(s) may vary according to the delivery system or method of administration and is chosen in accordance with conventional methods known in the ar t .
Thus, the active ingredients are compounded with the chosen carrier and in for example the case of a tablet form, placed in a tablet molding apparatus to form the tablets which are subsequently packaged in accordance with the chosen regimen.
In the oral form of the formulation, the contraceptives are preferably produced in the form of a pharmaceutical kit or package, with the daily dosages arranged for proper sequential administration. Thus, in another aspect, the present invention also provides a pharmaceutical package which contains combinationftype contraceptives in multiple dosage units in a synchronized: _ 26 _ fixed sequence, wherein the sequence or arrangement of the dosage units corresponds to the stages of daily administration.- Preferably, such packages are in the form of a transparent package with twenty~eight dosage units arranged sequentially and consisting of twenty¥one or twenty—four tablets containing the combined . estrogen/progestin formulation set up for the cyclical regimen of the invention and seven or four placebos thereafter; Preferably the placebo tablets and tablets containing the hormones are different colours or shapes.
Data indicationsfmay be provided on the packaging. The packaging may be a tube or box or a strip. The box may be circular, square. or otherwise shaped with the tabicts being accommodated separately therein for ease of administration. Date indications may appear adjacent each tablet corresponding with the days on which each tablet is to be taken. Some indication of the sequence in which the tablets are to be taken preferably appears on the packaging regardless of its form.
In the following examples, specific embodiments of the present invention are set forth. These are meant to be illustrative of the invention and are not meant to limit it in any way. All parts and percentages are by weight, unless indicated otherwise.
EXAMPLE 1 Three~day phases of unit dosages of l7alpha- ethinyl—estradio1(EE) 0.035 mg. and norethindrone (NET) _ 27 _ 0.5 mg. alternating with three-day phases of unit dosages of BE 0.035 mg. and NET 0.75 mg. for a total of 7 phases ~(21 days or 21 unit dosages) beginning and ending with the NET 0.5 mg. combination.
EXAMPLE 2 Three—day phases (unit dosages of EB 0.035 mg. and NET 0.5 mg.) alternating with three—day phases of EB 0.035 mg. and NET 0.35 mg., beginning and ending with the 0.5 mg. combination EXAMPLE 3 Two—day phases of unit dosages of EE 0.035 mg alternating with unit dosages of EE 0.035 mg and NET 0.35 mg, beginning and ending with the tirst unit dosage and running for 24 days total.
EXAMPLE 4 Three—day phases of unit dosages of EB 0.035 mg and NET 0.15 mg alternating with BE 0.035 mg and NET 0.35 mg and running for 24 days total.
EXAMPLE 5 Three—day and four—day phases of each of the above combinations as set forth in Examples 1 and 2, starting with either 3 or 4-day phases and ending with the other. - 23 _ EXAMPLE 6 Four—day and three—day phases of each of the above are prepared, starting with a four-day unit dosage of 0.5 mg. NET and 0.035 mg. EE and ending with 0.75 mg. NET and 0.035 mg. BE.
EXAMPLE 7 Three~day and four~day phases of each of the above formulations starting with a three-day phase of 0.35 mg.
NET with 0.035 mg. EE and ending with a four—day phase of 0.5 mg. NET and 0.035 mg. EB.
EXAMPLE 8 r~'.c .1- Une—day alternating p sot- aging Ln; unit £osag:s set forth in Examples 1 and 2.
EXAMPLE 9 Two—day alternating phases ending or beginning with a single 3-day phase, using the unit dosage formulations set forth in Examples 1 or 2.
EXAMPLE 10 Three—day phases of EB 0.035 mg. and levonorgestrel (D~norgestre1) 0.05 mg. alternating with 3-day phases of EB 0.035 mg. and levonorgestrel 0.075 mg. _ 29 _ EXAMPLE 11 . Three—day phases of EB 0.035 mg. and norgestimate 0.05 mg. alternating with EB 0.035 mg. and norgestimate .075 mg.
EXAMPLE 12 Three—day phases of EB 0.035 mg. and norgestimate 0.05 mg. alternating with EB 0.035 and norgestimate 0.035 EXAMPLES 13 & 14 One formulation was administered to 2 women for a total of 3 cycles to establish that cycle control, in terms of breakthrough bleeding, is acceptable. The test formulation consisted of three unit dosages of 0.035 mg. of 17alpha~ethinylestradiol and 0.5 mg- of norethindrone alternating with three unit dosages of 0.035 mg. of l7alpha—ethinylestradiol and 0.75 mg. of norethindrone for a total of 7 groups of three. beginning and ending with the 0.5 mg. of norethindrone combination.
EXAMPLE 13 A 23 year old nulliparous woman who had not taken any hormonal formulation including oral contraceptives for three months agreed to take the test formulation of the invention for two cycles. The subject was in good health and did not smoke. iThe subject had no contraindications to the use of oral contraceptives and her menstrual cycles were regular. The subject started the test formulation on the {ifth day of her cycle (onset of menstruation is considered day 1) for 21 consecutive days (first cycle), b _ 30 _ followed by a 7 day interval which was free of any hormone and then restarted the test formulation for another 21 days (second cycle). ,In the first cycle the subject had no bleeding or spotting while taking the test formulation and had a withdrawal bleed starting on the second day of the hormone free interval. The withdrawal bleed lasted for 5 days and was lighter than a normal menstrual period consisting of reddish—brown spotting. There was no discomfort associated with the withdrawal bleeding. In the second cycle. the subject was also free of bleeding or spotting while taking the test formulation and again had a brownish, very light withdrawal bleed which began two days after stopping the test formulation and lasted for 6 days. The subject experienced no side effects during the two test cycles.
EXAMPLE 14 The subject was a healthy, 27 year old nulliparous woman who was currently taking a commercially available oral contraceptive formulation containing l7alpha-ethiny- lestradiol and dl—norgestrel (Triphasil (Trade mark of Wyeth Pharmaceuticals)). The subject agreed to take the test formulation of the invention for one cycle. The subject started the test formulation after a 7 day hormone free interval following the last Triphasil tablet. The test formulation was taken for 21 days followed by a 7 day drug free interval. The subject had no spotting or bleeding during_the time she took the test formulation and experienced a withdrawal bleed which began two days after stopping the test formulation. The withdrawal bleeding lasted four days, was painless and was the same amount and colour as a normal menstrual period for the subject. The subject had no side effects during the test formulation. — 31 — 2 Both subjects found the test formulation to be acceptable ih terms of cycle control. side effects and menstrual bleeding.
Claims (20)
1. A contraceptive package containing from 20 to 35 sequentially-arranged unit dosages, the unit dosages being arranged in first and second alternating groups each consisting of from 1 to 5 unit dosages, the unit dosages in the first groups having a relatively dominant estrogen activity and the unit dosages in the second groups having a relatively dominant progestin activity, for daily administration of a single unit dosage in sequence to a female of child bearing age.
2. The package of claim 1, wherein estrogen is present in each unit dosage and the amount of progestin in the relatively dominant progestin activity unit dosages is higher than the amount of progestin in the relatively dominant estrogen activity unit dosages.
3. The package of claim 2, wherein the amount of estrogen in each unit dosage is constant.
4. The package of any one of claims 1 to 3, wherein the unit dosages in said first alternating groups contain 17ot-ethinylestradiol or an ester or ether thereof, ethinyl estradiol, mestranol, quinestranol, a conjugated equine estrogen, 1713-estadiol, estradiol valerate, estronc, estrone sulphate, piperazine estrone sulphate, esteriol, esteriol succinate or polyestrol phosphate.
5. The package of claim 4, wherein the unit dosages in said first alternating groups contain l7oL~ethinylestradiol.
6. The package of any one of claims 1 to 5, wherein the unit dosages in said second alternating groups contain progesterone, a l7-hydroxy progesterone ester, a l9—nor—l7—hydroxy progesterone ester, 17 or-ethinyl-testosterone, 170:-ethinylnon testosterone or a derivative thereof, norethindrone, norethindrone acetate, ethynodiol diacetate, dydrogesterone, medroxyprogesterone acetate, norethylnodrel, allylestrenol, lynoestrenol, quingestanol acetate, medrogestone, norgestrienone, dimethisterone, 0 cthisterone, cyproterone, cyproterone acetate, l—norgesterel, d—norgcstre1, dl— 10 I5 norgestrel, d-1 7[3- acetoxyethyl-17oL-ethinyl-gonen—3-one oxime, gestodene, norgestimate or desogestrel.
7. The package of claim 6, wherein the unit dosages in said second alternating groups contain norethindrone, norgestimate or d-norgestrel.
8. The package of any one of claims 1 to 7, wherein each alternating group consists of from 2 to 4 unit dosages.
9. The package of any one of claims 1 to 8, wherein each alternating group consists of 3 unit dosages.
10. The package of any one of claims 1 to 9 in which: the amount of estrogen in each unit dosage is from 0.020 to 0.050 mg of 170(- ethinylestradiol or its equivalent dosage in another synthetic or natural estrogen; and the amount of progestin in each unit dosage is from 0.00 to 1.00 mg of norethindrone or its equivalent in another synthetic or natural progestin.
11.l. The package of any one of claims 1 to 10, wherein each unit dosage contains from 0.2 to 1.0 mg of norethindrone or its equivalent in another synthetic or natural pro gestin.
12. The package of claim 9, wherein: each of said unit dosages in said first alternating groups contains 0035 mg of 170:-ethinylestradiol and 0.35 to 0.5 mg of norethindrone; and each of said unit dosages in said second alternating groups contains 0.035 mg of 17oL~ethinylestradiol and 0.5 to 0.75 mg of norethindrone.
13. The package of claim 9, wherein: each of said unit dosages in said first alternating groups contains 0.035 mg of 17a-ethinylestradiol and 0.5 mg of ‘o norethindrone; and each of said unit dosages in said second alternating groups contains 0.035 mg of 17ot-ethinylestradiol and 0.35 mg of norethindrone.
14. The package of claim 9, wherein: each of said unit dosages in said first alternating groups contains 0.035 mg of 170:-ethinylestradiol and 0.035 mg of norgestimate; and each of said unit dosages in said second alternating groups contains 0.035 mg of l7oL-ethinylestradiol and 0.05 mg of norgestimate.
15. The package of any one of claims 1 to 14, further comprising a group of hormone-free unit dosages arranged sequentially after all the first and second groups of unit dosages for daily administration after administration of all the hormone- containing unit dosages.
16. The package of claim 15, which contains 28 unit dosages, of which 21 or 24 are hormone-containing unit dosages and 7 or 4 respectively are hormone-free unit dosages.
17. The package of any one of claims 1 to 16, wherein the unit dosages are adapted to be administered orally, parenterally, sublingually, transdermally, intravaginally, intranasally or buccally.
18. The package of claim 17, wherein the unit dosages are adapted to be administered orally.
19. The package of claim 17, wherein the unit dosages are adapted to be administered transderrnally.
20. The package according to any one of claims 1 to 19, substantially as hereinbefore described with reference to the Examples and/or accompanying drawings. :- Q TOMKINS & CO.
Applications Claiming Priority (3)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
CACANADA24/09/1987547,743 | |||
CA000547743A CA1332227C (en) | 1987-09-24 | 1987-09-24 | Oral contraceptive formulation |
CA 547744 CA1332228C (en) | 1987-09-24 | 1987-09-24 | Formulation and method for estrogen replacement therapy |
Publications (2)
Publication Number | Publication Date |
---|---|
IE20030160A1 IE20030160A1 (en) | 2003-07-09 |
IE84449B1 true IE84449B1 (en) | 2006-12-13 |
Family
ID=
Similar Documents
Publication | Publication Date | Title |
---|---|---|
EP0559240B1 (en) | Contraceptive packages containing oestrogen and progestin | |
US5585370A (en) | Hormone preparation and method | |
US5108995A (en) | Hormone preparation and method | |
US5256421A (en) | Hormone preparation and method | |
RU2169567C2 (en) | Contraception method for being used by women of reproductive period not accessing premenopausal period | |
US7320970B2 (en) | Low dose estrogen interrupted hormone replacement therapy | |
EP0911029B1 (en) | Ultra low dose oral contraceptives with less menstrual bleeding and sustained efficacy | |
AU6245494A (en) | Hormone replacement therapy | |
ZA200404249B (en) | Oral contraceptives to prevent pregnancy and diminish premenstrual symptomatology | |
CA1332227C (en) | Oral contraceptive formulation | |
CA1332228C (en) | Formulation and method for estrogen replacement therapy | |
IE84449B1 (en) | Contraceptive packages containing oestrogen and progestin | |
DK174181B1 (en) | Compsn. for hormone replacement therapy and contraception - comprises alternating dominant oestrogen activity with dominant progestagenic activity combinations of oestrogen and progestin | |
IE83631B1 (en) | Hormone preparation and method | |
AU2005201151B2 (en) | Low dose estrogen interrupted hormone replacement therapy |