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Scientists use X-ray beams to determine role of zinc in development of ovarian follicles

The discovery that zinc is involved in the fertilization process earlier than initially thought was made with the help of the Bionanoprobe, a cutting-edge instrument at Argonne.

To make a baby, first you need an egg. To have an egg, there needs to be a follicle. And in the very beginning of follicle development, there needs to be zinc.

The last of those statements represents the new findings reported recently by a team of researchers from Michigan State University, Northwestern University and the U.S. Department of Energy’s (DOE) Argonne National Laboratory. The research builds upon earlier work looking at the role of zinc in fertilization and uncovers the importance of the metal earlier in the process of ovulation.

The results were reported in a paper in the Journal of Biological Chemistry that looked at the role of zinc in follicle development. The researchers, led by Teresa Woodruff and Tom O’Halloran of Michigan State University, used the Bionanoprobe at Argonne’s Advanced Photon Source (APS) to examine zinc and other trace elements in the egg cell itself as well as surrounding somatic cells.

The APS is a DOE Office of Science user facility at Argonne.

The researchers observed that the concentration of zinc in mouse follicles more than triples as they go through their development, while concentrations of other trace elements such as iron and copper increased to a lesser extent. The researchers also noticed that growing follicles acquired zinc at a rate 70 times faster than undeveloped follicles, suggesting a key role for zinc in the maturation of ovarian follicles.

“We had known from earlier research that zinc played an important role in fertilization, but this new research shows that it’s involved way before egg meets sperm,” said Argonne staff scientist Si Chen, an author of the study.

“This study is a beautiful example of how synchrotron-based science can open new fundamental understandings of biology, of reproduction, and of metabolism of disease,” said Michigan State microbiology professor Tom O’Halloran. ​“When you’re working with photons and X-ray beams, you might not always initially understand the connection to actual physiology — but this is really at the cutting edge of bringing new tools to the biology community.”

The Bionanoprobe is one of a few facilities in the world where researchers can measure the concentration of different elements within a cell’s organelles in cryogenic conditions, Chen said. ​“Being able to resolve subcellular compartments is important for understanding what’s going on behind the scenes as the follicle develops,” she said.

The importance of zinc for follicle development is related to the fact that there are zinc-activated proteins that control the process, according to Chen. ​“Transient fluctuations in the amount of zinc in a cell can provide important signaling pathways for the next steps in development,” she said.

The researchers also observed that the egg has ways of regulating how much zinc is allocated to specific subcellular locations. ​“The zinc levels need to be kept in a certain range for the follicle to develop normally,” Chen said. ​“Just like in the rest of our bodies, there are certain optimal conditions, or homeostasis, that needs to be achieved.”

At the Bionanoprobe, the researchers used X-ray fluorescence microscopy to measure the zinc concentrations.

The results may have implications for future studies on human fertility. ​“The production of follicles is essential to human reproduction,” Chen said. ​“Gaining a better understanding of how they develop could potentially lead to better reproductive medicine.”

“There are a lot of mysteries about what the signals are that tell which follicle to mature and be ovulated,” O’Halloran said. ​“This process is rooted in a deeper biological story about which we are just beginning to uncover the foundations.”

According to O’Halloran, the upcoming upgrade of the APS will give scientists access to a more intense beam that will produce a 100 times greater sensitivity to zinc, allowing for an even faster and more precise structural determination of chemical signatures.

“Because there’s so much biological variability between cells as they go through differentiation and developmental processes, you need to image a large number of sections to get a statistically representative sample,” he said. ​“With the upgraded APS, we’ll have more samples being measured per minute of beam time, with higher sensitivity and better spatial resolution.”

paper based on the study appeared in the January 2023 issue of the Journal of Biological Chemistry.

The work was funded by DOE’s Office of Science, the National Institute of Health (NIH) National Institute of General Medical Science and the National Virtual Biotechnology Laboratory.

About the Advanced Photon Source

The U. S. Department of Energy Office of Science’s Advanced Photon Source (APS) at Argonne National Laboratory is one of the world’s most productive X-ray light source facilities. The APS provides high-brightness X-ray beams to a diverse community of researchers in materials science, chemistry, condensed matter physics, the life and environmental sciences, and applied research. These X-rays are ideally suited for explorations of materials and biological structures; elemental distribution; chemical, magnetic, electronic states; and a wide range of technologically important engineering systems from batteries to fuel injector sprays, all of which are the foundations of our nation’s economic, technological, and physical well-being. Each year, more than 5,000 researchers use the APS to produce over 2,000 publications detailing impactful discoveries, and solve more vital biological protein structures than users of any other X-ray light source research facility. APS scientists and engineers innovate technology that is at the heart of advancing accelerator and light-source operations. This includes the insertion devices that produce extreme-brightness X-rays prized by researchers, lenses that focus the X-rays down to a few nanometers, instrumentation that maximizes the way the X-rays interact with samples being studied, and software that gathers and manages the massive quantity of data resulting from discovery research at the APS.

This research used resources of the Advanced Photon Source, a U.S. DOE Office of Science User Facility operated for the DOE Office of Science by Argonne National Laboratory under Contract No. DE-AC02-06CH11357.

Argonne National Laboratory seeks solutions to pressing national problems in science and technology. The nation’s first national laboratory, Argonne conducts leading-edge basic and applied scientific research in virtually every scientific discipline. Argonne researchers work closely with researchers from hundreds of companies, universities, and federal, state and municipal agencies to help them solve their specific problems, advance America’s scientific leadership and prepare the nation for a better future. With employees from more than 60 nations, Argonne is managed by UChicago Argonne, LLC for the U.S. Department of Energy’s Office of Science.

The U.S. Department of Energy’s Office of Science is the single largest supporter of basic research in the physical sciences in the United States and is working to address some of the most pressing challenges of our time. For more information, visit https://​ener​gy​.gov/​s​c​ience.