In Need of New Reproductive Cells? This Marine Worm Shows a Way

The 脰zpolat lab鈥檚 research organism, Platynereis dumerilii. Credit Ryan Null

While humans can鈥檛 renew their reproductive cells and organs if damaged, many invertebrates can as part of whole-body regeneration. Understanding how and why could have major implications for human stem-cell research and, potentially, for infertility treatments.

Duygu 脰zpolat聽at the Marine Biological Laboratory (美女直播做爱) is tracing the lineage of regenerated reproductive cells鈥攁lso called the germline鈥攖o determine the cellular programming that allows for their resurgence.

MBLHibbitt Fellow B. Duygu 脰zpolat. Credit: Daniel Cojanu MBLHibbitt Fellow B. Duygu 脰zpolat. Credit: Daniel Cojanu

鈥淲e are trying to understand where the cells that regenerate the germline come from,鈥 says 脰zpolat. 鈥淥nce we know that, we may be able to understand why some organisms can regenerate them and some can鈥檛.鈥 脰zpolat is a Hibbitt Fellow in the 美女直播做爱鈥檚 Bell Center for Regenerative Biology and Tissue Engineering.

Now, 脰zpolat and her colleagues are a step closer to this goal.听聽reveals that their research organism, the marine worm聽Platynereis dumerilii,听must develop a certain number of body segments before it starts forming its original reproductive cells.

鈥淚f you're going to study the regeneration of a structure in an organism, you need to know how that original structure formed first,鈥 says 脰zpolat. 鈥淎nd before this study, we didn't have a good understanding of when that happens.鈥

The paper, published in聽, shows that progenitor reproductive cells develop in聽P. dumerilii聽when the worms reach between 35 and 40 segments. Before this discovery, researchers working with聽P. dumerilii聽would have to conduct time-consuming assays to determine if the worm had enough original reproductive cells to begin experimentation.

Led by 脰zpolat and first author Emily Kuehn, a research assistant in 脰zpolat鈥檚 lab, the researchers used a technique called聽in situ聽hybridization to locate the germline cells in the worm鈥檚 body and track their development as segments were added. They studied hundreds of the two-centimeter worms, carried out different interventions, and generated a wealth of data that led them to their remarkably consistent conclusion.

The 脰zpolat lab鈥檚 research organism, Platynereis dumerilii. Credit Ryan Null The 脰zpolat lab鈥檚 research organism, Platynereis dumerilii. Credit Ryan Null

鈥淭he most surprising thing for me was the reliability of this segment count and its correlation to development of the germline,鈥 says 脰zpolat. Establishing this standard significantly cuts back on time and resources needed to study reproductive cell regeneration and increases reproducibility of data.

The team also published a first-of-kind algorithm to facilitate the use of a fluorescent聽in situ聽hybridization method in this type of experiment.

This research builds on years of work from the 脰zpolat lab. For example, the worms were cultured using a streamlined, scalable system developed in the lab and published in 2019. A standardized culturing system is key to understanding genetic cause and effect. If worms grow in different environments with different feeding schedules, it is nearly impossible to determine if variations observed in experiments are due to the scientists鈥 interventions or to growth conditions.

脰zpolat and team will follow this research with investigations into what happens when germline cells are forced to regenerate. They will amputate 90 percent of the worms鈥 length and watch as the germlines reemerge. They will then track the function of those regenerated cells and their effect on the health of the next generation, versus control worms who reproduce without being forced to regenerate germline cells.

marine worm
Fixed sample of the marine worm (P. dumerilii) processed for in situ hybridization to detect vasa gene expression. She is filled with oocytes, and she no longer has any internal organs. This is a part of the sexual metamorphosis process, when the worms lose their internal organs, and become mere carriers of gametes. Credit: Kuehn et al JEZ-B 2021

鈥淩ight now, the thing that we are most curious about is, do the progeny that come from a regenerated germline have more mutations?鈥 says 脰zpolat. 鈥淎nd, if so, how do those mutations affect the fitness of the next generation?鈥

Understanding the cellular and molecular pathways involved in regeneration could help 脰zpolat and her team understand how to make it happen in humans.

鈥淲ay down the line, this could inform infertility treatments,鈥 says 脰zpolat. 鈥淥ur job in fundamental science is to learn how these worms do cellular reprogramming. And if they keep the mutations at the low level, how they do that? Then maybe we can apply that to human therapies for regenerating cells or reprogramming cell types from different body parts.鈥

Citation:

,听,听,听,听,听聽(2021) Segment number threshold determines juvenile onset of germline cluster expansion in聽Platynereis dumerilii.听Journal of Experimental Zoology Part B: Molecular and Developmental Evolution, DOI:聽

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The Marine Biological Laboratory (美女直播做爱) is dedicated to scientific discovery 鈥 exploring fundamental biology, understanding marine biodiversity and the environment, and informing the human condition through research and education. Founded in Woods Hole, Massachusetts in 1888, the MBLis a private, nonprofit institution and an affiliate of the .