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            <title>Leveraging QIAGEN OmicSoft for scRNA-Seq in Pharma - Mike Dufault - Sanofi</title>
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            <media:title>Leveraging QIAGEN OmicSoft for scRNA-Seq in Pharma - Mike Dufault - Sanofi</media:title>
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            <category>discovery</category>
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            <category>ipa ugm</category>
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            <title>The epididymis: Balancing the burden and responsibility of fertility</title>
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            <description>&lt;p&gt;The responsibility of fertility is disproportionately placed on women, who bear most of the health, emotional and financial burdens. Infertility is rapidly rising, with one in six Australian couples seeking assisted reproductive technologies to help them start a family, and over 50% of cases involving a male factor. Despite these contributions, we still don’t fully understand the mechanisms that create competent sperm for fertilization, which occurs during their transit from the epididymis, a highly specialized region of the male reproductive tract.
&lt;p&gt;To address this knowledge gap, we used high-resolution tandem mass spectrometry and in-silico analyses to characterize proteome-wide changes in mouse sperm. We studied changes associated with their transit through the epididymis and elicited in response to capacitation stimuli, such as maturation initiated upon contact with the female reproductive tract.&lt;/p&gt;
&lt;p&gt;In this webinar, you’ll learn about:&lt;/p&gt;
&lt;p&gt;The unprecedented depth of &amp;gt;6000 proteins and 14,586 site-specific phosphorylation events across these sperm populations that we discovered using QIAGEN Ingenuity Pathway Analysis (IPA)&lt;br&gt;
How sperm shed over 56% of their proteins during this process, producing a refined fertilization-competent cell&lt;br&gt;
How this reduced proteomic complexity of sperm coincides with the activation of certain functions, such as sperm motility and capacitation&lt;br&gt;
Key proteins and kinases we identified through selective pharmacological inhibition that regulate sperm function&lt;br&gt;
The role of RHOA on mature spermatozoa to reduce the rate of acrosome reaction by about 40%&lt;br&gt;
Our data represent an essential paradigm shift in our understanding of male fertility regulation. They will contribute to important advancements in developing non-hormonal male contraceptives and robust sperm selection biomarkers for infertile men.&lt;/p&gt;&lt;/p&gt;&lt;p&gt;&lt;a href="http://tv.qiagenbioinformatics.com/photo/90244909/the-epididymis-balancing-the-burden"&gt;&lt;img src="http://tv.qiagenbioinformatics.com/64968576/90244909/77566ec40253ba273d48f0b50cf33d90/standard/download-8-thumbnail.jpg" width="75" height=""/&gt;&lt;/a&gt;&lt;/p&gt;</description>
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            <pubDate>Fri, 03 Nov 2023 15:04:46 GMT</pubDate>
            <media:title>The epididymis: Balancing the burden and responsibility of fertility</media:title>
            <itunes:summary>The responsibility of fertility is disproportionately placed on women, who bear most of the health, emotional and financial burdens. Infertility is rapidly rising, with one in six Australian couples seeking assisted reproductive technologies to help them start a family, and over 50% of cases involving a male factor. Despite these contributions, we still don’t fully understand the mechanisms that create competent sperm for fertilization, which occurs during their transit from the epididymis, a highly specialized region of the male reproductive tract.
To address this knowledge gap, we used high-resolution tandem mass spectrometry and in-silico analyses to characterize proteome-wide changes in mouse sperm. We studied changes associated with their transit through the epididymis and elicited in response to capacitation stimuli, such as maturation initiated upon contact with the female reproductive tract.
In this webinar, you’ll learn about:
The unprecedented depth of 6000 proteins and 14,586 site-specific phosphorylation events across these sperm populations that we discovered using QIAGEN Ingenuity Pathway Analysis (IPA)
How sperm shed over 56% of their proteins during this process, producing a refined fertilization-competent cell
How this reduced proteomic complexity of sperm coincides with the activation of certain functions, such as sperm motility and capacitation
Key proteins and kinases we identified through selective pharmacological inhibition that regulate sperm function
The role of RHOA on mature spermatozoa to reduce the rate of acrosome reaction by about 40%
Our data represent an essential paradigm shift in our understanding of male fertility regulation. They will contribute to important advancements in developing non-hormonal male contraceptives and robust sperm selection biomarkers for infertile men.</itunes:summary>
            <itunes:subtitle>The responsibility of fertility is disproportionately placed on women, who bear most of the health, emotional and financial burdens. Infertility is rapidly rising, with one in six Australian couples seeking assisted reproductive technologies to...</itunes:subtitle>
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            <itunes:duration>37:37</itunes:duration>
            <media:description type="html">&lt;p&gt;The responsibility of fertility is disproportionately placed on women, who bear most of the health, emotional and financial burdens. Infertility is rapidly rising, with one in six Australian couples seeking assisted reproductive technologies to help them start a family, and over 50% of cases involving a male factor. Despite these contributions, we still don’t fully understand the mechanisms that create competent sperm for fertilization, which occurs during their transit from the epididymis, a highly specialized region of the male reproductive tract.
&lt;p&gt;To address this knowledge gap, we used high-resolution tandem mass spectrometry and in-silico analyses to characterize proteome-wide changes in mouse sperm. We studied changes associated with their transit through the epididymis and elicited in response to capacitation stimuli, such as maturation initiated upon contact with the female reproductive tract.&lt;/p&gt;
&lt;p&gt;In this webinar, you’ll learn about:&lt;/p&gt;
&lt;p&gt;The unprecedented depth of &amp;gt;6000 proteins and 14,586 site-specific phosphorylation events across these sperm populations that we discovered using QIAGEN Ingenuity Pathway Analysis (IPA)&lt;br&gt;
How sperm shed over 56% of their proteins during this process, producing a refined fertilization-competent cell&lt;br&gt;
How this reduced proteomic complexity of sperm coincides with the activation of certain functions, such as sperm motility and capacitation&lt;br&gt;
Key proteins and kinases we identified through selective pharmacological inhibition that regulate sperm function&lt;br&gt;
The role of RHOA on mature spermatozoa to reduce the rate of acrosome reaction by about 40%&lt;br&gt;
Our data represent an essential paradigm shift in our understanding of male fertility regulation. They will contribute to important advancements in developing non-hormonal male contraceptives and robust sperm selection biomarkers for infertile men.&lt;/p&gt;&lt;/p&gt;&lt;p&gt;&lt;a href="http://tv.qiagenbioinformatics.com/photo/90244909/the-epididymis-balancing-the-burden"&gt;&lt;img src="http://tv.qiagenbioinformatics.com/64968576/90244909/77566ec40253ba273d48f0b50cf33d90/standard/download-8-thumbnail.jpg" width="75" height=""/&gt;&lt;/a&gt;&lt;/p&gt;</media:description>
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