Ovarian ERβ cistrome and transcriptome reveal chromatin interaction with LRH-1

Madeleine Birgersson1,2, Rajitha Indukuri1, Linnéa Lindquist1,2

  • 1Science for Life Laboratory (SciLifeLab), Department of Protein Science, KTH Royal Institute of Technology, 171 21, Solna, Sweden.

BMC Biology
|November 29, 2023
PubMed
Abstract

Insights

Estrogen receptor beta (ERβ) is crucial for ovarian function, but its mechanisms were unclear. This study reveals ERβ

Area of Science:

  • Reproductive Biology
  • Endocrinology
  • Genomics

Background:

  • Estrogen receptor beta (ERβ, Esr2) is vital for ovarian processes like folliculogenesis and ovulation.
  • The precise molecular mechanisms governing ERβ's role in the ovary remain largely uncharacterized.

Purpose of the Study:

  • To elucidate the genome-wide function of ERβ in the mouse ovary.
  • To identify direct ERβ target genes and understand its regulatory networks.
  • To investigate the interplay between ERβ and liver receptor homolog 1 (LRH-1).

Main Methods:

  • Performed ERβ ChIP-sequencing and RNA-sequencing on wild-type and ERβ knockout mouse ovaries.
  • Integrated cistrome and transcriptome data to identify ERβ targets and functions.
  • Utilized cell-type deconvolution analysis and ChIP-reChIP assays.
  • Conducted transactivation assays to study ERβ and LRH-1 interactions.

Main Results:

  • Identified ERβ's significant impact on genes involved in development, cell migration, lipid metabolism, and responses to hypoxia and estrogen.
  • ERβ loss altered ovarian cell proportions, decreasing luteal cells and increasing theca and cumulus cells.
  • Demonstrated extensive co-binding of ERβ and LRH-1 at shared chromatin locations, particularly in granulosa cells.
  • Showed that ERβ and LRH-1 can mutually inhibit transcriptional activity.

Conclusions:

  • Characterized genome-wide ERβ chromatin binding and gene regulation in the ovary.
  • Revealed extensive crosstalk between ERβ and LRH-1, providing mechanistic insights.
  • Established a foundation for understanding ERβ's role in ovarian physiology and fertility.

Related Concept Videos

Non-LTR Retrotransposons03:18

Non-LTR Retrotransposons

As the name suggests, non-LTR retrotransposons lack the long terminal repeats characteristic of the LTR retrotransposons. Additionally, both LTR and non-LTR retrotransposons use distinct mechanisms of mobilization. Non-LTR retrotransposons are further divided into two classes - Long interspersed nuclear elements (LINEs) and short interspersed nuclear elements (SINEs), both of which occur abundantly in most mammals, including humans. Some of the active non-LTR retrotransposons in humans are L1...
11.5K
The Nucleolus02:55

The Nucleolus

The nucleolus is the most prominent substructure of the nucleus. When it was first discovered, it was considered to be an isolated organelle that forms fibrils and granules. In 1931, the relationship between the nucleolus and chromosomes was first described by Heitz. He observed that the appearance and size of nucleolus varies depending on the stage of the cell cycle. He also noticed constricted regions on different chromosomes clustered together at definite cell cycle stages. These regions,...
8.9K
LTR Retrotransposons03:08

LTR Retrotransposons

LTR retrotransposons are class I transposable elements with long terminal repeats flanking an internal coding region. These elements are less abundant in mammals compared to other class I transposable elements. About 8 percent of human genomic DNA comprises LTR retrotransposons. Some of the common examples of LTR retrotransposons are Ty elements in yeast and Copia elements in Drosophila.
The internal coding region of LTR retrotransposons and their mechanism of transposition closely resembles a...
17.5K
Lampbrush Chromosomes01:51

Lampbrush Chromosomes

In 1882, Flemming observed lampbrush chromosomes (LBC) in salamander eggs. Later in 1892, Rückert observed LBCs in shark egg cells and coined the term "lampbrush chromosomes" because they looked like brushes used to clean kerosene lamps.
LBCs are made up of two pairs of conjugating homologous chromatids. Each chromatid consists of alternatively positioned regions of condensed-inactive chromatin and loosely placed-active side loops, which can be contracted and extended. The loops...
7.9K
Chromatin Position Affects Gene Expression02:35

Chromatin Position Affects Gene Expression

Chromatin is the massive complex of DNA and proteins packaged inside the nucleus. The complexity of chromatin folding and how it is packaged inside the nucleus greatly influences  access to genetic information. Generally, the nucleus' periphery is considered transcriptionally repressive, while the cell's interior is considered a transcriptionally active area. 
Topologically Associated Domains (TADs)
The 3-dimensional positioning of chromatin in the nucleus influences the...
23.3K