31.15
卵巢周期是月经周期的一个关键组成部分,卵巢周期每个月经历两个主要阶段——卵泡期和黄体期。卵泡期长短不一,平均持续约 14 天。排卵由促黄体激素 (LH) 的激增引发,标志着两个阶段之间的过渡。第二阶段,即黄体期,相对稳定,持续约 14 天,以黄体活动为标志。虽然周期长度通常为 28 天,但范围可以从…
卵巢周期主要由卵泡期和黄体期组成。
在卵泡期,原始卵泡发育为初级卵泡。该卵泡内的初级卵母细胞会分泌一层富含糖蛋白的细胞外结构——透明带——包裹在自身周围。
初级卵泡随后发育出多层颗粒细胞,并转化为次级卵泡。
随着卵泡发育的进展,结缔组织和上皮细胞层——卵泡膜(theca folliculi)——也会在次级卵泡周围形成。
接着,次级卵泡发育为囊状卵泡或有腔卵泡,形成一个充满液体的腔隙——即卵泡腔。
这个卵泡腔随着液体的充盈而扩大,直至次级卵母细胞及其周围的颗粒细胞包膜——放射冠——被分离出来。
当卵泡直径达到约1英寸时,会从卵巢外表面突出。
排卵是指成熟卵泡破裂,次级卵母细胞被释放到腹膜腔中的过程。
排卵后,破裂的卵泡形成黄体。
如果没有发生妊娠,黄体会退化并留下一个瘢痕——白体。
View the full transcript and gain access to JoVE Core videos
Q1: What are the main phases of the ovarian cycle?
The ovarian cycle consists of two main phases: the follicular phase and the luteal phase. The follicular phase, averaging around 14 days, involves the growth and maturation of ovarian follicles stimulated by follicle-stimulating hormone (FSH). The luteal phase, lasting approximately 14 days, follows ovulation and is characterized by corpus luteum activity. Together, these phases typically complete a 28-day cycle, though cycles can range from 21 to 40 days.
Q2: How does a primordial follicle develop into a mature follicle?
A primordial follicle transforms into a primary follicle when the primary oocyte secretes the zona pellucida, a glycoprotein-rich extracellular layer. The primary follicle then develops multiple layers of granulosa cells and becomes a secondary follicle. As development continues, theca folliculi—connective tissue and epithelial cells—form around the secondary follicle. Finally, the secondary follicle matures into a vesicular or antral follicle containing a fluid-filled cavity called an antrum.
Q3: What triggers ovulation and what happens during the process?
Ovulation is triggered by a surge in luteinizing hormone (LH), which causes the mature follicle to rupture. During ovulation, the secondary oocyte, surrounded by the corona radiata (a capsule of granulosa cells), is released into the peritoneal cavity. Some individuals experience mittelschmerz, or ovulatory pain, during this process, though the precise mechanism remains unclear. In rare cases (1-2%), two oocytes may be released, potentially resulting in fraternal twins.
Q4: What is the corpus luteum and what does it produce?
The corpus luteum forms from the ruptured follicle after ovulation and secretes large amounts of progesterone along with smaller quantities of estrogens, relaxin, and inhibin. Progesterone prepares the endometrium for implantation, while inhibin reduces further FSH secretion. If pregnancy occurs, human chorionic gonadotropin (hCG) from the developing embryo sustains the corpus luteum until the placenta can produce adequate hormones independently.
Q5: How does the dominant follicle emerge during the follicular phase?
During the follicular phase, FSH promotes the growth of multiple follicles while preventing atresia. Among these follicles, a dominant follicle emerges and becomes increasingly sensitive to FSH by up-regulating its FSH receptors. This dominant follicle is also sensitive to LH, allowing it to mature fully at ovulation while its counterparts regress. The primary oocyte within the dominant follicle undergoes meiosis I, forming a secondary oocyte and polar body in preparation for ovulation.
Q6: What happens to the corpus luteum if pregnancy does not occur?
Without pregnancy, the corpus luteum degenerates into the corpus albicans, a scar-like remnant. As the corpus luteum degenerates, progesterone levels decline, triggering endometrial shedding and the onset of menstruation. This hormonal shift marks the transition from the luteal phase back to the follicular phase, restarting the ovarian cycle. The corpus albicans remains as a permanent scar on the ovary.
Q7: Why does cycle length vary among individuals?
While a 28-day cycle is common, ovarian cycles range from 21 to 40 days, with variability largely due to differences in the follicular phase and ovulation timing. The follicular phase is variable and can be influenced by hormonal factors and individual physiology, whereas the luteal phase remains relatively consistent at approximately 14 days. Additionally, some individuals experience variations in oocyte release influenced by factors beyond hormonal signaling, potentially explaining rhythm method contraceptive failures.