<p>Iron is an essential micronutrient that influences both the nutritional value of bivalves and their cellular iron homeostasis. However, the molecular mechanisms underlying interspecific differences in iron accumulation among economically important bivalves remain unclear. Ferritin (FER), a highly conserved iron-storage protein, plays a central role in iron regulation, yet comparative studies integrating sequence, expression, and functional analysis across multiple bivalve species are still limited. To address this, we designed a multi-level comparative approach that integrates tissue iron measurements, sequence analyses, expression profiling, and in vitro recombinant-protein functional assays—offering a broader comparative assessment than previous single-species or single-method studies. Using this framework, we evaluated tissue iron content and <i>FER</i> expression characteristics in five commercially important bivalve species: <i>Sinonovacula constricta</i>, <i>Meretrix meretrix</i>, <i>Crassostrea gigas</i>, <i>Ruditapes philippinarum</i>, and <i>Tegillarca granosa</i>. Iron levels, measured by ICP-MS and colorimetric assays, were highest in <i>S. constricta</i> (approximately 2.5-fold higher than <i>C. gigas</i>) and lowest in <i>C. gigas</i>. Bioinformatic analyses, including sequence conservation, motif prediction, and structural modeling using AlphaFold, showed high conservation of FER proteins across the five species. <i>FER</i> mRNA expression quantified by qRT-PCR partially corresponded to tissue iron content, with the strongest agreement observed in <i>S. constricta</i>, which showed approximately 3-fold higher <i>FER</i> expression than <i>C. gigas</i>. Recombinant FER proteins expressed in <i>Escherichia coli</i> exhibited Fe<sup>2+</sup>-responsive migration patterns and iron enrichment capacities, with FER from <i>S. constricta</i> showing strong iron enrichment activity, approximately 2.2-fold higher than that of <i>C. gigas</i>. Collectively, these findings indicate that FER may be associated with interspecific variation in iron accumulation among bivalves. The high tissue iron content, elevated <i>FER</i> expression, and strong recombinant FER iron enrichment capacity observed in <i>S. constricta</i> suggest that FER may contribute to iron storage in this species. However, the inconsistent patterns observed in <i>T. granosa</i> and <i>R. philippinarum</i> indicate that iron accumulation in bivalves is likely regulated by multiple FER-dependent and FER-independent mechanisms.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Ferritin Associates with Interspecific Variation in Iron Accumulation among Five Economically Important Bivalves: Sequence, Expression, and Functional Analyses

  • Jiachen Li,
  • Ao Li,
  • Zizheng Wei,
  • Zhihua Lin,
  • Liyuan Lv,
  • Hanhan Yao,
  • Yinghui Dong

摘要

Iron is an essential micronutrient that influences both the nutritional value of bivalves and their cellular iron homeostasis. However, the molecular mechanisms underlying interspecific differences in iron accumulation among economically important bivalves remain unclear. Ferritin (FER), a highly conserved iron-storage protein, plays a central role in iron regulation, yet comparative studies integrating sequence, expression, and functional analysis across multiple bivalve species are still limited. To address this, we designed a multi-level comparative approach that integrates tissue iron measurements, sequence analyses, expression profiling, and in vitro recombinant-protein functional assays—offering a broader comparative assessment than previous single-species or single-method studies. Using this framework, we evaluated tissue iron content and FER expression characteristics in five commercially important bivalve species: Sinonovacula constricta, Meretrix meretrix, Crassostrea gigas, Ruditapes philippinarum, and Tegillarca granosa. Iron levels, measured by ICP-MS and colorimetric assays, were highest in S. constricta (approximately 2.5-fold higher than C. gigas) and lowest in C. gigas. Bioinformatic analyses, including sequence conservation, motif prediction, and structural modeling using AlphaFold, showed high conservation of FER proteins across the five species. FER mRNA expression quantified by qRT-PCR partially corresponded to tissue iron content, with the strongest agreement observed in S. constricta, which showed approximately 3-fold higher FER expression than C. gigas. Recombinant FER proteins expressed in Escherichia coli exhibited Fe2+-responsive migration patterns and iron enrichment capacities, with FER from S. constricta showing strong iron enrichment activity, approximately 2.2-fold higher than that of C. gigas. Collectively, these findings indicate that FER may be associated with interspecific variation in iron accumulation among bivalves. The high tissue iron content, elevated FER expression, and strong recombinant FER iron enrichment capacity observed in S. constricta suggest that FER may contribute to iron storage in this species. However, the inconsistent patterns observed in T. granosa and R. philippinarum indicate that iron accumulation in bivalves is likely regulated by multiple FER-dependent and FER-independent mechanisms.